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'''Platinum''' is a [[chemical element]]; it has [[Symbol (chemistry)|symbol]] '''Pt''' and [[atomic number]] 78. It is a [[density|dense]], [[malleable]], [[ductility|ductile]], highly unreactive, [[precious metal|precious]], silverish-white [[transition metal]]. Its name originates from [[Spanish language|Spanish]] {{lang|es|platina}}<!--NOT PLATINO, even though that is the word for platinum in today's Spanish-->, a [[diminutive]] of {{lang|es|plata}} "silver".<ref>{{cite web|url=http://www.britannica.com/EBchecked/topic/464081/platinum-Pt|title=platinum (Pt)|archive-url=https://web.archive.org/web/20120405132703/http://www.britannica.com/EBchecked/topic/464081/platinum-Pt|archive-date=5 April 2012|website=[[Encyclopædia Britannica]]|publisher=Encyclopædia Britannica Inc.|date=2012|access-date=24 April 2012}}</ref><ref>{{OEtymD|platinum}}</ref><!--source for "platina del Pinto"<ref>{{cite book|last=Woods|first=Ian|title=The Elements: Platinum|publisher=Benchmark Books|year=2004|series=The Elements|isbn=978-0-7614-1550-3}}</ref>-->
'''Platinum''' is a [[chemical element]]; it has [[Symbol (chemistry)|symbol]] '''Pt''' and [[atomic number]] 78. It is a [[density|dense]], [[malleable]], [[ductility|ductile]], highly unreactive, [[precious metal|precious]], silverish-white [[transition metal]]. Its name originates from [[Spanish language|Spanish]] {{lang|es|platina}}<!--NOT PLATINO, even though that is the word for platinum in today's Spanish-->, a [[diminutive]] of {{lang|es|plata}} "silver".<ref>{{cite web|url=http://www.britannica.com/EBchecked/topic/464081/platinum-Pt|title=platinum (Pt)|archive-url=https://web.archive.org/web/20120405132703/http://www.britannica.com/EBchecked/topic/464081/platinum-Pt|archive-date=5 April 2012|website=[[Encyclopædia Britannica]]|publisher=Encyclopædia Britannica Inc.|date=2012|access-date=24 April 2012}}</ref><ref>{{OEtymD|platinum}}</ref><!--source for "platina del Pinto"<ref>{{cite book|last=Woods|first=Ian|title=The Elements: Platinum|publisher=Benchmark Books|year=2004|series=The Elements|isbn=978-0-7614-1550-3}}</ref>-->


Platinum is a member of the [[platinum group]] of elements and [[group 10 element|group 10]] of the [[periodic table of elements]]. It has six naturally occurring [[isotopes]]. It is one of the [[Abundance of elements in Earth's crust|rarer elements in Earth's crust]], with an average abundance of approximately 5&nbsp;[[microgram|μg]]/kg.<ref name=Sicius-2024/> It occurs in some [[nickel]] and [[copper]] ores along with some [[Native element mineral|native]] deposits, with 90% of current production from deposits across Russia's [[Ural Mountains]], [[Colombia]], the [[Sudbury Basin|Sudbury basin]] of [[Canada]], and a large reserve in [[South Africa]].<ref name=Sicius-2024>{{Cite book |last=Sicius |first=Hermann |url=https://link.springer.com/10.1007/978-3-662-68921-9 |title=Handbook of the Chemical Elements |date=2024 |publisher=Springer Berlin Heidelberg |isbn=978-3-662-68920-2 |location=Berlin, Heidelberg |language=en |doi=10.1007/978-3-662-68921-9}}</ref>{{rp|779}} Because of its scarcity in Earth's crust, only a few hundred [[tonne]]s are produced annually, and given its important uses, it is highly valuable as well as a major [[List of traded commodities#Metals|precious metal commodity]].
Platinum is a member of the [[platinum group]] of elements and [[group 10 element|group 10]] of the [[periodic table of elements]]. It has six naturally occurring [[isotopes]]. It is one of the [[Abundance of elements in Earth's crust|rarer elements in Earth's crust]], with an average abundance of approximately 5&nbsp;[[microgram|μg]]/kg.<ref name=Sicius-2024/> It occurs in some [[nickel]] and [[copper]] ores along with some [[Native element mineral|native]] deposits, with deposits from across Russia's [[Ural Mountains]], [[Colombia]], the [[Sudbury Basin|Sudbury basin]] of [[Canada]], and a large reserve in [[South Africa]] all accounting for a major portion of mined platinum.<ref name="Sicius-2024">{{Cite book |last=Sicius |first=Hermann |url=https://link.springer.com/10.1007/978-3-662-68921-9 |title=Handbook of the Chemical Elements |date=2024 |publisher=Springer Berlin Heidelberg |isbn=978-3-662-68920-2 |location=Berlin, Heidelberg |language=en |doi=10.1007/978-3-662-68921-9}}</ref>{{rp|779}} Because of its scarcity in Earth's crust, barely a few hundred metric [[tonne]]s are produced annually, and given its important uses, it is highly valuable as well as a major [[List of traded commodities#Metals|precious metal commodity]].


Platinum is one of the [[Reactivity series|least reactive metals]]. It has remarkable resistance to [[corrosion]], even at high temperatures, and is therefore considered a [[noble metal]]. Consequently, platinum is often found chemically uncombined as native platinum. Because it occurs naturally in the [[alluvium|alluvial sands]] of various rivers, it was first used by [[pre-Columbian]] [[Indigenous peoples of South America|South American natives]] to produce artifacts. It was referenced in European writings as early as the 16th century, but it was not until [[Antonio de Ulloa]] published a report on a new metal of [[Colombia]]n origin in 1748 that it began to be investigated by scientists.
Platinum does not [[corrosion|corrode]], even at high temperatures, and is therefore considered a [[noble metal]]. Consequently, platinum is often found chemically uncombined as native platinum. Because it occurs naturally in the [[alluvium|alluvial sands]] of various rivers, it was first used by [[pre-Columbian]] [[Indigenous peoples of South America|South American natives]] to produce artifacts. It was referenced in European writings as early as the 16th century, but it was not until [[Antonio de Ulloa]] published a report on a new metal of [[Colombia]]n origin in 1748 that it began to be investigated by scientists.


Platinum is used in [[catalytic converter]]s, laboratory equipment, [[electric]]al contacts and [[electrode]]s, [[platinum resistance thermometer]]s, [[dentistry]] equipment, and jewelry. Platinum is used in the glass industry<ref>{{cite journal |title=Platinum in the Glass Industry |url=http://www.technology.matthey.com/article/4/1/2-9/ |journal=Platinum Metals Review|date=1960 |doi=10.1595/003214060X4129 |last1=Preston |first1=Eric |volume=4 |pages=2–9 |url-access=subscription }}</ref> to manipulate molten glass, which does not "[[Wetting|wet]]" platinum. Elemental platinum has not been linked to adverse health effects. Compounds containing platinum, such as [[cisplatin]], [[oxaliplatin]] and [[carboplatin]], are applied in [[chemotherapy]] against certain types of cancer.<ref>{{cite journal | pmid = 20593091 | date = 2010 | last1 = Wheate | first1 = N. J. | last2 = Walker | first2 = S. | last3 = Craig | first3 = G. E. | last4 = Oun | first4 = R. | title = The status of platinum anticancer drugs in the clinic and in clinical trials | volume = 39 | issue = 35 | pages = 8113–27 | doi = 10.1039/C0DT00292E | journal = Dalton Transactions| url = https://ses.library.usyd.edu.au/bitstream/2123/9269/2/41%20Dalton%20perspective.pdf | hdl = 2123/14271 | hdl-access = free }}</ref>
Platinum is used in [[catalytic converter]]s, laboratory equipment, [[electric]]al contacts and [[electrode]]s, [[platinum resistance thermometer]]s, [[dentistry]] equipment, and jewelry. Platinum is used in the glass industry<ref>{{cite journal |title=Platinum in the Glass Industry |url=http://www.technology.matthey.com/article/4/1/2-9/ |journal=Platinum Metals Review|date=1960 |doi=10.1595/003214060X4129 |last1=Preston |first1=Eric |volume=4 |pages=2–9 |url-access=subscription }}</ref> to manipulate molten glass, which does not "[[Wetting|wet]]" platinum. Elemental platinum has not been linked to adverse health effects. Compounds containing platinum, such as [[cisplatin]], [[oxaliplatin]] and [[carboplatin]], are applied in [[chemotherapy]] as treatment for certain types of cancer.<ref>{{cite journal | pmid = 20593091 | date = 2010 | last1 = Wheate | first1 = N. J. | last2 = Walker | first2 = S. | last3 = Craig | first3 = G. E. | last4 = Oun | first4 = R. | title = The status of platinum anticancer drugs in the clinic and in clinical trials | volume = 39 | issue = 35 | pages = 8113–27 | doi = 10.1039/C0DT00292E | journal = Dalton Transactions| url = https://ses.library.usyd.edu.au/bitstream/2123/9269/2/41%20Dalton%20perspective.pdf | hdl = 2123/14271 | hdl-access = free }}</ref>


==Characteristics==
==Characteristics==


===Physical===
===Physical===
Pure platinum is a lustrous, [[Ductility|ductile]], and [[malleable]], silver-white metal.<ref name="lagowski">{{cite book|title = Chemistry Foundations and Applications|volume = 3|editor = Lagowski, J. J.|pages = [https://archive.org/details/chemistryfoundat0000unse/page/267 267–268]|date = 2004|isbn = 978-0-02-865724-0|publisher = Thomson Gale|url = https://archive.org/details/chemistryfoundat0000unse/page/267}}</ref> Platinum is more ductile than [[gold]], [[silver]] or [[copper]], thus being the most ductile of pure metals, but it is less malleable than gold.<ref>{{cite book |first=M. |last=Schwartz |title=Encyclopedia and Handbook of Materials, Parts and Finishes |publisher=CRC Press |edition=2nd |date=2002 |isbn=9781420017168 |pages= |url=}}</ref><ref>{{cite book |last1=Vaccari |first1=J.A. |last2=Clauser |first2=H.R. |last3=Brady |first3=G.S. |title=Materials handbook: an encyclopedia for managers, technical professionals, purchasing and production managers, technicians, and supervisors |publisher=McGraw-Hill |edition=15th |date=2002 |isbn=9780071360760 |pages= |url=}}</ref>
Platinum is a lustrous, [[Ductility|ductile]], and [[malleable]], silver-white metal.<ref name="lagowski">{{cite book|title = Chemistry Foundations and Applications|volume = 3|editor = Lagowski, J. J.|pages = [https://archive.org/details/chemistryfoundat0000unse/page/267 267–268]|date = 2004|isbn = 978-0-02-865724-0|publisher = Thomson Gale|url = https://archive.org/details/chemistryfoundat0000unse/page/267}}</ref> Platinum is more ductile than gold, [[silver]] or [[copper]], thus being the most ductile of pure metals.<ref>{{cite book |first=M. |last=Schwartz |title=Encyclopedia and Handbook of Materials, Parts and Finishes |publisher=CRC Press |edition=2nd |date=2002 |isbn=9781420017168 |pages= |url=}}</ref><ref>{{cite book |last1=Vaccari |first1=J.A. |last2=Clauser |first2=H.R. |last3=Brady |first3=G.S. |title=Materials handbook: an encyclopedia for managers, technical professionals, purchasing and production managers, technicians, and supervisors |publisher=McGraw-Hill |edition=15th |date=2002 |isbn=9780071360760 |pages= |url=}}</ref>


Its physical characteristics and chemical stability make it useful for industrial applications.<ref>{{cite book|chapter-url = https://books.google.com/books?id=KXwgAZJBWb0C&pg=RA1-PT8|chapter = Platinum|pages = 8–9|isbn = 978-0-87170-518-1|title = Handbook of corrosion data|author1 = Craig, Bruce D|author2 = Anderson, David S|author3 = International, A.S.M.|date = January 1995| publisher=ASM International |url-status = live|archive-url = https://web.archive.org/web/20170324014936/https://books.google.com/books?id=KXwgAZJBWb0C&pg=RA1-PT8|archive-date = 24 March 2017|df = dmy-all}}</ref> Its resistance to wear and tarnish is well suited to use in fine [[Jewellery|jewelry]].
Its physical characteristics and chemical stability make it useful for industrial applications.<ref>{{cite book|chapter-url = https://books.google.com/books?id=KXwgAZJBWb0C&pg=RA1-PT8|chapter = Platinum|pages = 8–9|isbn = 978-0-87170-518-1|title = Handbook of corrosion data|author1 = Craig, Bruce D|author2 = Anderson, David S|author3 = International, A.S.M.|date = January 1995| publisher=ASM International |url-status = live|archive-url = https://web.archive.org/web/20170324014936/https://books.google.com/books?id=KXwgAZJBWb0C&pg=RA1-PT8|archive-date = 24 March 2017|df = dmy-all}}</ref> Its resistance to wear and tarnish is well suited to use in fine [[Jewellery|jewelry]].<ref>{{Cite web |title=Platinum vs palladium: price, durability and key differences |url=https://metals-wire.net/special/platinum-vs-palladium-price-durability-and-key-differences/ |access-date=2025-07-18 |website=Metals Wire |language=en}}</ref>


===Chemical===
===Chemical===
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[[File:Platin löst sich in heißem Königswasser.jpg|thumb| upright=1.3|left|Platinum being dissolved in hot ''[[aqua regia]]'']]
[[File:Platin löst sich in heißem Königswasser.jpg|thumb| upright=1.3|left|Platinum being dissolved in hot ''[[aqua regia]]'']]


Platinum has excellent resistance to [[corrosion]]. Bulk platinum does not oxidize in air at any temperature, but it forms a thin surface film of [[Platinum dioxide|{{chem2|PtO2}}]] that can be easily removed by heating to about 400&nbsp;°C.<ref>{{cite web | first=J.C. | last=Chaston | title=Reaction of Oxygen with the Platinum Metals | website=technology.matthey.com | url=https://technology.matthey.com/journal | access-date=2022-07-30 | archive-date=30 July 2022 | archive-url=https://web.archive.org/web/20220730200706/https://technology.matthey.com/journal | url-status=dead }}</ref><ref name="Brewer 1953">{{cite journal |last1=Brewer |first1=Leo |title=Thermodynamic Properties of the Oxides and their Vaporization Processes. |journal=Chemical Reviews |date=1953 |volume=53 |issue= |pages=1–75 |doi=10.1021/cr60161a001 |url=https://pubs.acs.org/doi/pdf/10.1021/cr60161a001|access-date=30 July 2022|url-access=subscription }}</ref>
Platinum does not [[Corrosion|corrode]], and bulk platinum does not oxidize in air at any temperature, but heated metal wires lose weight faster in air or oxygen than it does in a vacuum. The suggestion is that Pt forms a thin surface film of [[Platinum dioxide|{{chem2|PtO2}}]] that decomposes when heated above 500&nbsp;°C.<ref>{{Cite journal |last=Chaston |first=By J. C. |date=April 1, 1964 |title=Reaction of Oxygen with the Platinum Metals: I—The Oxidation of Platinum |url=https://technology.matthey.com/content/journals/10.1595/003214064X825054 |journal=Platinum Metals Review |language=en |volume=8 |issue=2 |pages=50–54 |doi=10.1595/003214064X825054 |issn=0032-1400|url-access=subscription }}</ref>


The most common [[oxidation state]]s of platinum are +2 and +4. The +1 and +3 oxidation states are less common, and are often stabilized by metal bonding in bimetallic (or polymetallic) species. Tetracoordinate platinum(II) compounds tend to adopt 16-electron [[square planar]] geometries. Although elemental platinum is generally unreactive, it is attacked by [[chlorine]], [[bromine]], [[iodine]], and [[sulfur]]. It reacts vigorously with fluorine at {{convert|500|C}} to form [[platinum tetrafluoride]].<ref name="Lockyer1891">{{cite book|author=Sir Norman Lockyer|title=Nature|url=https://books.google.com/books?id=FswKAAAAYAAJ&pg=PA625|year=1891|publisher=Macmillan Journals Limited|pages=625–|url-status=live|archive-url=https://web.archive.org/web/20170324091844/https://books.google.com/books?id=FswKAAAAYAAJ&pg=PA625|archive-date=24 March 2017|df=dmy-all}}</ref> Platinum is insoluble in [[hydrochloric acid|hydrochloric]] and [[nitric acid]], but dissolves in hot ''[[aqua regia]]'' (a mixture of nitric and hydrochloric acids), to form aqueous [[chloroplatinic acid]], {{chem2|H2PtCl6}}:<ref name="Kauuf" /><ref name="CRC">{{Cite book| author = ((CRC contributors)) | editor = Lide, David R.| chapter = Platinum| date = 2007–2008| title = CRC Handbook of Chemistry and Physics| volume = 4| page= 26| location = New York| publisher = CRC Press| isbn = 978-0-8493-0488-0}}</ref>
The most common [[oxidation state]]s of platinum are +2 and +4. The +1 and +3 oxidation states are less common, and are often stabilized by metal bonding in bimetallic (or polymetallic) species. Tetracoordinate platinum(II) compounds tend to adopt 16-electron [[square planar]] geometries. Although elemental platinum is generally unreactive, it is attacked by [[chlorine]], [[bromine]], [[iodine]], and [[sulfur]]. It reacts vigorously with fluorine at {{convert|500|C}} to form [[platinum tetrafluoride]].<ref name="Lockyer1891">{{cite book|author=Sir Norman Lockyer|title=Nature|url=https://books.google.com/books?id=FswKAAAAYAAJ&pg=PA625|year=1891|publisher=Macmillan Journals Limited|pages=625–|url-status=live|archive-url=https://web.archive.org/web/20170324091844/https://books.google.com/books?id=FswKAAAAYAAJ&pg=PA625|archive-date=24 March 2017|df=dmy-all}}</ref> Platinum is insoluble in [[hydrochloric acid|hydrochloric]] and [[nitric acid]], but dissolves in hot ''[[aqua regia]]'' (a mixture of nitric and hydrochloric acids), to form aqueous [[chloroplatinic acid]], {{chem2|H2PtCl6}}:<ref name="Kauuf" /><ref name="CRC">{{Cite book| author = ((CRC contributors)) | editor = Lide, David R.| chapter = Platinum| date = 2007–2008| title = CRC Handbook of Chemistry and Physics| volume = 4| page= 26| location = New York| publisher = CRC Press| isbn = 978-0-8493-0488-0}}</ref>
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: {{chem2|1=Pt + 4 HNO3 + 6 HCl → H2PtCl6 + 4 NO2 + 4 H2O}}
: {{chem2|1=Pt + 4 HNO3 + 6 HCl → H2PtCl6 + 4 NO2 + 4 H2O}}


As a [[HSAB theory|soft acid]], the {{chem2|Pt(2+)}} ion has a great affinity for sulfide and sulfur ligands. Numerous DMSO complexes have been reported and care is taken in the choosing of reaction solvents.<ref name="han">{{cite journal|doi = 10.1021/om700543p|title = Mono- vs Bis(carbene) Complexes: A Detailed Study on Platinum(II)−Benzimidazolin-2-ylidenes|date = 2007|first1 = Y. |last1 = Han |first2=H. V. |last2=Huynh |first3=G. K. |last3 = Tan|journal = [[Organometallics]]|volume = 26|pages = 4612–4617|issue = 18}}</ref>
As a [[HSAB theory|soft acid]], the {{chem2|Pt(2+)}} ion has a great affinity for sulfide and sulfur ligands. Numerous DMSO complexes have been reported and care is taken in the choosing of reaction solvents.<ref name="han">{{cite journal|doi = 10.1021/om700543p|title = Mono- vs Bis(carbene) Complexes: A Detailed Study on Platinum(II)−Benzimidazolin-2-ylidenes|date = 2007|first1 = Y. |last1 = Han |first2=H. V. |last2=Huynh |first3=G. K. |last3 = Tan|journal = [[Organometallics]]|volume = 26|pages = 4612–4617|issue = 18 | url=http://scholarbank.nus.edu.sg/handle/10635/94318 }}</ref>


In 2007, the German scientist [[Gerhard Ertl]] won the [[Nobel Prize in Chemistry]] for determining the detailed molecular mechanisms of the catalytic oxidation of [[carbon monoxide]] over platinum ([[catalytic converter]]).<ref>{{cite journal |pages = 385–407|doi = 10.1002/anie.200800480 |title = Reactions at Surfaces: From Atoms to Complexity (Nobel Lecture) |pmid = 18357601 |issue = 19 |date = 2008 |last1 = Ertl |first1 = Gerhard |journal = Angewandte Chemie International Edition |volume = 47 |s2cid = 38416086 }}</ref>
In 2007, the German scientist [[Gerhard Ertl]] won the [[Nobel Prize in Chemistry]] for determining the detailed molecular mechanisms of the catalytic oxidation of [[carbon monoxide]] over platinum ([[catalytic converter]]).<ref>{{cite journal |pages = 385–407|doi = 10.1002/anie.200800480 |title = Reactions at Surfaces: From Atoms to Complexity (Nobel Lecture) |pmid = 18357601 |issue = 19 |date = 2008 |last1 = Ertl |first1 = Gerhard |journal = Angewandte Chemie International Edition |volume = 47 |bibcode = 2008ACIE...47.3524E |s2cid = 38416086 }}</ref>


===Isotopes===
===Isotopes===
{{main|Isotopes of platinum}}
{{main|Isotopes of platinum}}
Platinum has six naturally occurring [[isotopes]]: {{chem|190|Pt}}, {{chem|192|Pt}}, {{chem|194|Pt}}, {{chem|195|Pt}}, {{chem|196|Pt}}, and {{chem|198|Pt}}. The most [[isotopic abundance|abundant]] of these is {{chem|195|Pt}}, comprising 33.83% of all platinum. It is the only stable isotope with a non-zero [[Spin (physics)|spin]]. The spin of <sup>1</sup>/<sub>2</sub> and other favourable magnetic properties of the nucleus are utilised in [[Platinum-195 nuclear magnetic resonance|{{chem|195|Pt}} NMR]]. Due to its spin and large abundance, {{chem|195|Pt}} satellite peaks are also often observed in {{chem|1|H}} and {{chem|31|P}} NMR spectroscopy (''e.g.,'' for Pt-phosphine and Pt-alkyl complexes). {{chem|190|Pt}} is the least abundant at only 0.012%. Of the naturally occurring isotopes, only {{chem|190|Pt}} is unstable, though it decays with a half-life of 4.83{{e|11}}&nbsp;years,<ref name="nubase"/> causing an activity of 16.8 [[Becquerel|Bq]]/kg of natural platinum. Other isotopes can undergo [[alpha decay]], but their decay has never been observed, therefore they are considered stable.<ref name="bellidecay">{{cite journal |last1=Belli |first1=P. |last2=Bernabei |first2=R. |last3=Danevich |first3=F. A. |last4=Incicchitti |first4=A. |last5=Tretyak |first5=V. I. |display-authors=3 |title=Experimental searches for rare alpha and beta decays |journal=European Physical Journal A |date=2019 |volume=55 |issue=8 |pages=140–1–140–7 |doi=10.1140/epja/i2019-12823-2 |issn=1434-601X |arxiv=1908.11458|bibcode=2019EPJA...55..140B |s2cid=201664098 }}</ref> Platinum also has 38 synthetic isotopes ranging in atomic mass from 165 to 208, making the total number of known isotopes 44. The least stable of these are {{chem|165|Pt}} and {{chem|166|Pt}}, with half-lives of 260&nbsp;μs, whereas the most stable is {{chem|193|Pt}} with a half-life of 50&nbsp;years. Most platinum isotopes decay by some combination of [[beta decay]] and alpha decay. {{chem|188|Pt}}, {{chem|191|Pt}}, and {{chem|193|Pt}} decay primarily by [[electron capture]]. {{chem|190|Pt}} and {{chem|198|Pt}} are predicted to have energetically favorable [[double beta decay]] paths.<ref name="nubase">{{NUBASE2020}}</ref>
Platinum has six naturally occurring [[isotopes]]: {{chem|190|Pt}}, {{chem|192|Pt}}, {{chem|194|Pt}}, {{chem|195|Pt}}, {{chem|196|Pt}}, and {{chem|198|Pt}}. The most [[isotopic abundance|abundant]] of these is {{chem|195|Pt}}, comprising 33.83% of all platinum; it is the only stable isotope with a non-zero [[Spin (physics)|spin]], of <sup>1</sup>/<sub>2</sub>, and it is favorable for use in [[Platinum-195 nuclear magnetic resonance|{{chem|195|Pt}} NMR]]. Due to its spin and large abundance, {{chem|195|Pt}} satellite peaks are also often observed in {{chem|1|H}} and {{chem|31|P}} NMR spectroscopy (''e.g.,'' for Pt-phosphine and Pt-alkyl complexes). The radioactive {{chem|190|Pt}} is the least abundant of these at only 0.012%; it undergoes [[alpha decay]] with a half-life of 4.83{{e|11}}&nbsp;years, causing the very low activity of 16.8 [[Becquerel|Bq]]/kg of natural platinum.<ref name="nubase"/> The decay of this isotope has some use in [[isotope geology]], though not directly for dating.<ref>{{Cite journal |last1=Walker |first1=Richard J. |last2=Morgan |first2=John W. |last3=Beary |first3=Ellyn S. |last4=Smoliar |first4=Michael I. |last5=Czamanske |first5=Gerald K. |last6=Horan |first6=Mary F. |date=November 1997 |title=Applications of the 190Pt186Os isotope system to geochemistry and cosmochemistry |url=https://linkinghub.elsevier.com/retrieve/pii/S0016703797002706 |journal=Geochimica et Cosmochimica Acta |language=en |volume=61 |issue=22 |pages=4799–4807 |doi=10.1016/S0016-7037(97)00270-6|url-access=subscription }}</ref>
 
The other natural isotopes are theoretically capable of [[alpha decay]] also, but this has never been observed, and therefore they are considered stable.<ref name="bellidecay">{{cite journal |last1=Belli |first1=P. |last2=Bernabei |first2=R. |last3=Danevich |first3=F. A. |last4=Incicchitti |first4=A. |last5=Tretyak |first5=V. I. |display-authors=3 |title=Experimental searches for rare alpha and beta decays |journal=European Physical Journal A |date=2019 |volume=55 |issue=8 |pages=140–1–140–7 |doi=10.1140/epja/i2019-12823-2 |issn=1434-601X |arxiv=1908.11458|bibcode=2019EPJA...55..140B |s2cid=201664098 }}</ref> Platinum also has 38 synthetic isotopes ranging in atomic mass from 165 to 208, making the total number of known isotopes 44. The most stable of these [[radionuclide|radioisotopes]] is {{chem|193|Pt}}, with a half-life of 50&nbsp;years. Most platinum isotopes decay by some combination of [[beta decay]] and (on the proton-rich side) alpha decay. {{chem|188|Pt}}, {{chem|191|Pt}}, and {{chem|193|Pt}} decay only by [[electron capture]] (besides the very small alpha branch of the first). {{chem|190|Pt}} and {{chem|198|Pt}} are predicted to have energetically favorable [[double beta decay]] paths.<ref name="nubase">{{NUBASE2020}}</ref>


===Occurrence===
===Occurrence===
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[[File:Platinum-palladium ore, Stillwater mine MT.JPG|thumb|left|Platinum-palladium ore, Stillwater mine, Beartooth Mountains, Montana, US]]
[[File:Platinum-palladium ore, Stillwater mine MT.JPG|thumb|left|Platinum-palladium ore, Stillwater mine, Beartooth Mountains, Montana, US]]
[[File:Sulfidic serpentintite (platinum-palladium ore) Johns-Manville Reef, Stillwater Complex.jpg|thumb|left|Sulfidic serpentinite (platinum-palladium ore) from Stillwater Mine, Beartooth Mountains, Montana, USA]]
[[File:Sulfidic serpentintite (platinum-palladium ore) Johns-Manville Reef, Stillwater Complex.jpg|thumb|left|Sulfidic serpentinite (platinum-palladium ore) from Stillwater Mine, Beartooth Mountains, Montana, USA]]
Platinum is an extremely rare metal,<ref>{{cite journal |url=https://www.newscientist.com/article/mg19426051-200-earths-natural-wealth-an-audit/ |first=D. |last=Cohen |title=Earth's natural wealth: an audit |journal=New Scientist |date=23 May 2007|volume=194 |issue=2605 |pages=34–41 |doi=10.1016/S0262-4079(07)61315-3 }}</ref> occurring at a concentration of only 0.005 [[Parts per million|ppm]] in [[Earth's crust]].<ref>{{cite book|url=https://books.google.com/books?id=nDhpLa1rl44C&pg=PT141|page=141|title=Encyclopaedia of Occupational Health and Safety: Chemical, industries and occupations|author=Stellman, Jeanne Mager|publisher=International Labour Organization|date=1998|isbn=978-92-2-109816-4|url-status=live|archive-url=https://web.archive.org/web/20170324015653/https://books.google.com/books?id=nDhpLa1rl44C&pg=PT141|archive-date=24 March 2017|df=dmy-all}}</ref><ref>{{cite book|url=https://books.google.com/books?id=5IC6--3zhXMC&pg=PA71|page=71|title=in Symposium on Spectrocemical Analysis for Trace Elements|author=Murata, K. J.|publisher=ASTM International|date=1958|url-status=live|archive-url=https://web.archive.org/web/20170324034432/https://books.google.com/books?id=5IC6--3zhXMC&pg=PA71|archive-date=24 March 2017|df=dmy-all}}</ref>Platinum is often found chemically uncombined as native platinum and as [[alloy]] with the other platinum-group metals mostly. Most often native platinum is found in secondary deposits among [[alluvium|alluvial]] deposits. The alluvial deposits used by [[pre-Columbian]] people in the [[Chocó Department]], [[Colombia]] are still a source for platinum-group metals. Another large alluvial deposit is in the [[Ural Mountains]], Russia, and it is still mined.<ref name="CRC" />
Platinum is an extremely rare metal on [[Earth]],<ref>{{cite journal |url=https://www.newscientist.com/article/mg19426051-200-earths-natural-wealth-an-audit/ |first=D. |last=Cohen |title=Earth's natural wealth: an audit |journal=New Scientist |date=23 May 2007|volume=194 |issue=2605 |pages=34–41 |doi=10.1016/S0262-4079(07)61315-3 }}</ref> occurring at a concentration of only 0.005 [[Parts per million|ppm]] in [[Earth's crust]].<ref>{{cite book|url=https://books.google.com/books?id=nDhpLa1rl44C&pg=PT141|page=141|title=Encyclopaedia of Occupational Health and Safety: Chemical, industries and occupations|author=Stellman, Jeanne Mager|publisher=International Labour Organization|date=1998|isbn=978-92-2-109816-4|url-status=live|archive-url=https://web.archive.org/web/20170324015653/https://books.google.com/books?id=nDhpLa1rl44C&pg=PT141|archive-date=24 March 2017|df=dmy-all}}</ref><ref>{{cite book|url=https://books.google.com/books?id=5IC6--3zhXMC&pg=PA71|page=71|title=in Symposium on Spectrocemical Analysis for Trace Elements|author=Murata, K. J.|publisher=ASTM International|date=1958|url-status=live|archive-url=https://web.archive.org/web/20170324034432/https://books.google.com/books?id=5IC6--3zhXMC&pg=PA71|archive-date=24 March 2017|df=dmy-all}}</ref> Platinum is often found chemically uncombined as native platinum and as [[alloy]] with the other platinum-group metals mostly. Most often native platinum is found in secondary deposits among [[alluvium|alluvial]] deposits. The alluvial deposits used by [[pre-Columbian]] people in the [[Chocó Department]], [[Colombia]] are still a source for platinum-group metals. Another large alluvial deposit is in the [[Ural Mountains]], Russia, and it is still mined.<ref name="CRC" />


In [[nickel]] and [[copper]] deposits, platinum-group metals occur as [[sulfide]]s (e.g., {{chem2|(Pt,Pd)S)}}, [[telluride (chemistry)|tellurides]] (e.g., {{chem2|PtBiTe}}), [[antimonide]]s (PdSb), and [[arsenide]]s (e.g. {{chem2|PtAs2}}), and as end alloys with nickel or copper. Platinum arsenide, [[sperrylite]] ({{chem2|PtAs2}}), is a major source of platinum associated with nickel ores in the [[Sudbury Basin]] deposit in [[Ontario]], [[Canada]]. At [[Platinum, Alaska]], about {{convert|17000|kg|ozt|abbr=on}} was mined between 1927 and 1975. The mine ceased operations in 1990.<ref>{{cite web
In [[nickel]] and [[copper]] deposits, platinum-group metals occur as [[sulfide]]s (e.g., {{chem2|(Pt,Pd)S)}}, [[telluride (chemistry)|tellurides]] (e.g., {{chem2|PtBiTe}}), [[antimonide]]s (PdSb), and [[arsenide]]s (e.g. {{chem2|PtAs2}}), and as end alloys with nickel or copper. Platinum arsenide, [[sperrylite]] ({{chem2|PtAs2}}), is a major source of platinum associated with nickel ores in the [[Sudbury Basin]] deposit in [[Ontario]], [[Canada]]. At [[Platinum, Alaska]], about {{convert|17000|kg|ozt|abbr=on}} was mined between 1927 and 1975. The mine ceased operations in 1990.<ref>{{cite web
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In 1865, [[chromite]]s were identified in the Bushveld region of South Africa, followed by the discovery of platinum in 1906.<ref>Dan Oancea [http://www.infomine.com/publications/docs/Mining.com/Sep2008e.pdf Platinum In South Africa] {{webarchive|url=https://web.archive.org/web/20110813082346/http://www.infomine.com/publications/docs/Mining.com/Sep2008e.pdf |date=13 August 2011 }}. MINING.com. September 2008</ref> In 1924, the geologist [[Hans Merensky]] discovered a large supply of platinum in the [[Bushveld Igneous Complex]] in South Africa. The specific layer he found, named the [[Merensky Reef]], contains around 75% of the world's known platinum.<ref>{{cite journal|url=http://www.technology.matthey.com/article/43/4/146-148/|title=Seventy-fifth Anniversary of the Discovery of the Platiniferous Merensky Reef|journal=Platinum Metals Review|author=R. Grant Cawthorn|year=1999|volume=43 |issue=4 |pages=146–148 |doi=10.1595/003214099X434146148 |access-date=24 Dec 2017|doi-access=free}}</ref><ref name="kirk-pt" /> The large copper–nickel deposits near [[Norilsk#Norilsk-Talnakh nickel deposits|Norilsk]] in [[Russia]], and the [[Sudbury Basin]], [[Canada]], are the two other large deposits. In the Sudbury Basin, the huge quantities of nickel ore processed make up for the fact platinum is present as only 0.5 [[parts per million|ppm]] in the ore. Smaller reserves can be found in the United States,<ref name="kirk-pt">{{cite book |title=Kirk Othmer Encyclopedia of Chemical Technology |first = R. J.|last = Seymour|author2=O'Farrelly, J. I. |chapter=Platinum-group metals |doi=10.1002/0471238961.1612012019052513.a01.pub2 |date=2001 |publisher=Wiley|isbn = 978-0471238966}}</ref> for example in the [[Absaroka Range]] in [[Montana]].<ref name="NewYorkTimes">{{cite news |url=https://query.nytimes.com/gst/fullpage.html?res=9802E3D6153AF930A2575BC0A96E958260 |title=Mining Platinum in Montana |access-date=9 September 2008 |newspaper=New York Times |date=13 August 1998 |url-status=live |archive-url=https://web.archive.org/web/20080203041654/http://query.nytimes.com/gst/fullpage.html?res=9802E3D6153AF930A2575BC0A96E958260 |archive-date=3 February 2008 |df=dmy-all }}</ref> In 2010, South Africa was the top producer of platinum, with an almost 77% share, followed by Russia at 13%; world production in 2010 was {{convert|192,000|kg|abbr=on}}.<ref name="usgs2012-summary">{{cite web |url=http://minerals.usgs.gov/minerals/pubs/commodity/platinum/mcs-2012-plati.pdf |author=Loferski, P. J. |title=Platinum–Group Metals |publisher=USGS Mineral Resources Program |date=July 2012 |access-date=17 July 2012 |url-status=live |archive-url=https://web.archive.org/web/20120707202546/http://minerals.usgs.gov/minerals/pubs/commodity/platinum/mcs-2012-plati.pdf |archive-date=7 July 2012 |df=dmy-all }}</ref>
In 1865, [[chromite]]s were identified in the Bushveld region of South Africa, followed by the discovery of platinum in 1906.<ref>Dan Oancea [http://www.infomine.com/publications/docs/Mining.com/Sep2008e.pdf Platinum In South Africa] {{webarchive|url=https://web.archive.org/web/20110813082346/http://www.infomine.com/publications/docs/Mining.com/Sep2008e.pdf |date=13 August 2011 }}. MINING.com. September 2008</ref> In 1924, the geologist [[Hans Merensky]] discovered a large supply of platinum in the [[Bushveld Igneous Complex]] in South Africa. The specific layer he found, named the [[Merensky Reef]], contains around 75% of the world's known platinum.<ref>{{cite journal|url=http://www.technology.matthey.com/article/43/4/146-148/|title=Seventy-fifth Anniversary of the Discovery of the Platiniferous Merensky Reef|journal=Platinum Metals Review|author=R. Grant Cawthorn|year=1999|volume=43 |issue=4 |pages=146–148 |doi=10.1595/003214099X434146148 |access-date=24 Dec 2017|doi-access=free}}</ref><ref name="kirk-pt" /> The large copper–nickel deposits near [[Norilsk#Norilsk-Talnakh nickel deposits|Norilsk]] in [[Russia]], and the [[Sudbury Basin]], [[Canada]], are the two other large deposits. In the Sudbury Basin, the huge quantities of nickel ore processed make up for the fact platinum is present as only 0.5 [[parts per million|ppm]] in the ore. Smaller reserves can be found in the United States,<ref name="kirk-pt">{{cite book |title=Kirk Othmer Encyclopedia of Chemical Technology |first = R. J.|last = Seymour|author2=O'Farrelly, J. I. |chapter=Platinum-group metals |doi=10.1002/0471238961.1612012019052513.a01.pub2 |date=2001 |publisher=Wiley|isbn = 978-0471238966}}</ref> for example in the [[Absaroka Range]] in [[Montana]].<ref name="NewYorkTimes">{{cite news |url=https://query.nytimes.com/gst/fullpage.html?res=9802E3D6153AF930A2575BC0A96E958260 |title=Mining Platinum in Montana |access-date=9 September 2008 |newspaper=New York Times |date=13 August 1998 |url-status=live |archive-url=https://web.archive.org/web/20080203041654/http://query.nytimes.com/gst/fullpage.html?res=9802E3D6153AF930A2575BC0A96E958260 |archive-date=3 February 2008 |df=dmy-all }}</ref> In 2010, South Africa was the top producer of platinum, with an almost 77% share, followed by Russia at 13%; world production in 2010 was {{convert|192,000|kg|abbr=on}}.<ref name="usgs2012-summary">{{cite web |url=http://minerals.usgs.gov/minerals/pubs/commodity/platinum/mcs-2012-plati.pdf |author=Loferski, P. J. |title=Platinum–Group Metals |publisher=USGS Mineral Resources Program |date=July 2012 |access-date=17 July 2012 |url-status=live |archive-url=https://web.archive.org/web/20120707202546/http://minerals.usgs.gov/minerals/pubs/commodity/platinum/mcs-2012-plati.pdf |archive-date=7 July 2012 |df=dmy-all }}</ref>


New approaches to finding platinum deposits by studying ground water found some evidence of new deposits in the state of [[Tamil Nadu]], [[India]].<ref>{{Cite journal |last1=Balaram |first1=Vysetti |last2=Satyanarayanan |first2=Manavalan |last3=Anabarasu |first3=Kuppan |last4=Rao |first4=Denduluri Venkata Subba |last5=Ali |first5=Mohammed Dar |last6=Kamala |first6=Chigullarevu Tirumala |last7=Charan |first7=Subramaniam Nirmal |date=2019-10-01 |title=Hydrogeochemistry as a Tool for Platinum Group Element (PGE) Exploration – A Case Study from Sittampundi Anorthosite Complex, Southern India |url=https://pubs.geoscienceworld.org/jour-geosocindia/article/94/4/341/633369/Hydrogeochemistry-as-a-Tool-for-Platinum-Group |journal=Journal of the Geological Society of India |language=en |volume=94 |issue=4 |pages=341–350 |doi=10.1007/s12594-019-1321-7 |bibcode=2019JGSI...94..341B |issn=0974-6889|url-access=subscription }}</ref>
Advanced techniques to finding platinum deposits by studying ground water found some evidence of new deposits in the state of [[Tamil Nadu]], [[India]].<ref>{{Cite journal |last1=Balaram |first1=Vysetti |last2=Satyanarayanan |first2=Manavalan |last3=Anabarasu |first3=Kuppan |last4=Rao |first4=Denduluri Venkata Subba |last5=Ali |first5=Mohammed Dar |last6=Kamala |first6=Chigullarevu Tirumala |last7=Charan |first7=Subramaniam Nirmal |date=2019-10-01 |title=Hydrogeochemistry as a Tool for Platinum Group Element (PGE) Exploration – A Case Study from Sittampundi Anorthosite Complex, Southern India |url=https://pubs.geoscienceworld.org/jour-geosocindia/article/94/4/341/633369/Hydrogeochemistry-as-a-Tool-for-Platinum-Group |journal=Journal of the Geological Society of India |language=en |volume=94 |issue=4 |pages=341–350 |doi=10.1007/s12594-019-1321-7 |bibcode=2019JGSI...94..341B |issn=0974-6889|url-access=subscription }}</ref>


Platinum exists in higher abundances on the [[Moon]] and in meteorites. Correspondingly, platinum is found in slightly higher abundances at sites of [[bolide]] impact on Earth that are associated with resulting post-impact volcanism, and can be mined economically; the [[Sudbury Basin]] is one such example.<ref>{{cite book|chapter-url = https://books.google.com/books?id=N-CLZhAXQzEC&pg=PA133|chapter = Identification of meteoritic components in imactites|first = Christian|last = Koeberl|isbn = 978-1-86239-017-1|pages = 133–155|title = Meteorites: flux with time and impact effects|date = 1998|url-status = live|archive-url = https://web.archive.org/web/20170324040542/https://books.google.com/books?id=N-CLZhAXQzEC&pg=PA133|archive-date = 24 March 2017|df = dmy-all}}</ref>
Platinum exists in somewhat higher quantity on the [[Moon]] and in meteorites. Correspondingly, platinum is found in slightly higher abundances at sites of [[bolide]] impact on Earth that are associated with resulting post-impact volcanism and can be mined economically; the [[Sudbury Basin]] is one such example.<ref>{{cite book|chapter-url = https://books.google.com/books?id=N-CLZhAXQzEC&pg=PA133|chapter = Identification of meteoritic components in imactites|first = Christian|last = Koeberl|isbn = 978-1-86239-017-1|pages = 133–155|title = Meteorites: flux with time and impact effects|date = 1998|url-status = live|archive-url = https://web.archive.org/web/20170324040542/https://books.google.com/books?id=N-CLZhAXQzEC&pg=PA133|archive-date = 24 March 2017|df = dmy-all}}</ref>


==Compounds==
==Compounds==
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Unlike [[palladium acetate]], [[platinum(II) acetate]] is not commercially available. Where a base is desired, the halides have been used in conjunction with [[sodium acetate]].<ref name = han/> The use of platinum(II) acetylacetonate has also been reported.<ref>{{cite journal|first1 = Sebastian |last1= Ahrens |first2= Thomas|last2= Strassner|doi = 10.1016/j.ica.2006.05.042|title = Detour-free synthesis of platinum-bis-NHC chloride complexes, their structure and catalytic activity in the CH activation of methane|date = 2006|journal = Inorganica Chimica Acta|volume = 359|pages = 4789–4796|issue = 15}}</ref>
Unlike [[palladium acetate]], [[platinum(II) acetate]] is not commercially available. Where a base is desired, the halides have been used in conjunction with [[sodium acetate]].<ref name = han/> The use of platinum(II) acetylacetonate has also been reported.<ref>{{cite journal|first1 = Sebastian |last1= Ahrens |first2= Thomas|last2= Strassner|doi = 10.1016/j.ica.2006.05.042|title = Detour-free synthesis of platinum-bis-NHC chloride complexes, their structure and catalytic activity in the CH activation of methane|date = 2006|journal = Inorganica Chimica Acta|volume = 359|pages = 4789–4796|issue = 15}}</ref>


Platinum exhibits negative oxidation states at surfaces reduced electrochemically,<ref>{{cite journal|doi=10.1021/jp068879d|title=Spectroscopic Evidence of Platinum Negative Oxidation States at Electrochemically Reduced Surfaces|date=2007|display-authors=4|last1=Ghilane|first1=J.|last2=Lagrost|first2=C.|last3=Guilloux-Viry|first3=M.|last4=Simonet|first4=J.|last5=Delamar|first5=M.|last6=Mangeney|first6=C.|last7=Hapiot|first7=P.|journal=Journal of Physical Chemistry C|volume=111|pages=5701–7|issue=15}}</ref> and several "platinides" have been synthesized in which platinum exhibits oxidation states ranging from −1 to −2. The negative oxidation states exhibited by platinum are unusual for metallic elements, and they are attributed to the relativistic stabilization of the 6s orbitals.<ref name="Jansen" /> Barium platinides include BaPt, {{chem|Ba|3|Pt|2}}, and {{chem|Ba|2|Pt}}.<ref>{{cite journal| doi = 10.1039/b514631c |title = An experimental proof for negative oxidation states of platinum: ESCA-measurements on barium platinides|first1=Andrey |last1= Karpov| first2=Mitsuharu| pmid = 16479284 |last2=Konuma|first3=Martin |last3=Jansen|journal = Chemical Communications|volume = 44|date = 2006| issue = 8|pages = 838–840}}</ref> Caesium platinide, {{chem|Cs|2|Pt}}, a dark-red transparent crystalline compound<ref>{{cite journal|doi=10.1002/anie.200352314|title=Cs2Pt: A Platinide(-II) Exhibiting Complete Charge Separation|date=2003|last1=Karpov|first1=Andrey|last2=Nuss|first2=Jürgen|last3=Wedig|first3=Ulrich|last4=Jansen|first4=Martin|journal=Angewandte Chemie International Edition|volume=42|issue=39|pages=4818–21|pmid=14562358}}</ref> has been shown to contain Pt{{su|p=2−}} anions.<ref name="Jansen">{{cite journal|doi=10.1016/j.solidstatesciences.2005.06.015|title=Effects of relativistic motion of electrons on the chemistry of gold and platinum|date=2005|last1=Jansen|first1=Martin|journal=Solid State Sciences|volume=7|pages=1464–74|bibcode=2005SSSci...7.1464J|issue=12|doi-access=free}}</ref> The "platinum [[Grignard reagent|Grignard]]" Pt(MgCl)<sub>2</sub>·{{mvar|n}}[[tetrahydrofuran|THF]] conjecturally contains Pt<sup>2&minus;</sup> as well.<ref>{{Cite journal |last=Ellis |first=John E. |date=2006-04-17 |title=Adventures with Substances Containing Metals in Negative Oxidation States |url=https://pubs.acs.org/doi/10.1021/ic052110i |journal=Inorganic Chemistry |language=en |volume=45 |issue=8 |page=3170 |doi=10.1021/ic052110i |pmid=16602773 |issn=0020-1669|url-access=subscription }}</ref>
Platinum exhibits negative oxidation states at surfaces reduced electrochemically,<ref>{{cite journal|doi=10.1021/jp068879d|title=Spectroscopic Evidence of Platinum Negative Oxidation States at Electrochemically Reduced Surfaces|date=2007|display-authors=4|last1=Ghilane|first1=J.|last2=Lagrost|first2=C.|last3=Guilloux-Viry|first3=M.|last4=Simonet|first4=J.|last5=Delamar|first5=M.|last6=Mangeney|first6=C.|last7=Hapiot|first7=P.|journal=Journal of Physical Chemistry C|volume=111|pages=5701–7|issue=15}}</ref> and several "platinides" have been synthesized in which platinum exhibits oxidation states ranging from −1 to −2. The negative oxidation states exhibited by platinum are unusual for metallic elements, and they are attributed to the relativistic stabilization of the 6s orbitals.<ref name="Jansen" /> Barium platinides include BaPt, {{chem|Ba|3|Pt|2}}, and {{chem|Ba|2|Pt}}.<ref>{{cite journal| doi = 10.1039/b514631c |title = An experimental proof for negative oxidation states of platinum: ESCA-measurements on barium platinides|first1=Andrey |last1= Karpov| first2=Mitsuharu| pmid = 16479284 |last2=Konuma|first3=Martin |last3=Jansen|journal = Chemical Communications|volume = 44|date = 2006| issue = 8|pages = 838–840}}</ref> Caesium platinide, {{chem|Cs|2|Pt}}, a dark-red transparent crystalline compound<ref>{{cite journal|doi=10.1002/anie.200352314|title=Cs2Pt: A Platinide(-II) Exhibiting Complete Charge Separation|date=2003|last1=Karpov|first1=Andrey|last2=Nuss|first2=Jürgen|last3=Wedig|first3=Ulrich|last4=Jansen|first4=Martin|journal=Angewandte Chemie International Edition|volume=42|issue=39|pages=4818–21|pmid=14562358 |bibcode=2003ACIE...42.4818K }}</ref> has been shown to contain Pt{{su|p=2−}} anions.<ref name="Jansen">{{cite journal|doi=10.1016/j.solidstatesciences.2005.06.015|title=Effects of relativistic motion of electrons on the chemistry of gold and platinum|date=2005|last1=Jansen|first1=Martin|journal=Solid State Sciences|volume=7|pages=1464–74|bibcode=2005SSSci...7.1464J|issue=12|doi-access=free}}</ref> The "platinum [[Grignard reagent|Grignard]]" Pt(MgCl)<sub>2</sub>·{{mvar|n}}[[tetrahydrofuran|THF]] conjecturally contains Pt<sup>2&minus;</sup> as well.<ref>{{Cite journal |last=Ellis |first=John E. |date=2006-04-17 |title=Adventures with Substances Containing Metals in Negative Oxidation States |url=https://pubs.acs.org/doi/10.1021/ic052110i |journal=Inorganic Chemistry |language=en |volume=45 |issue=8 |page=3170 |doi=10.1021/ic052110i |pmid=16602773 |issn=0020-1669|url-access=subscription }}</ref>


It is predicted that even the cation {{chem|PtO|4|2+}} in which platinum exists in the +10 oxidation state may be achievable.<ref>{{cite web |first=M. |last=Gunther |title=Oxidation state +10 may exist in a platinum compound |date=13 June 2016 |publisher=Chemistry World |url=https://www.chemistryworld.com/news/oxidation-state-10-may-exist-in-a-platinum-compound/1010184.article}}<br/>{{cite journal |first1=H.S. |last1=Yu |first2=D.G. |last2=Truhlar |title=Oxidation State 10 Exists |journal=Angew. Chem. Int. Ed. |volume=55 |issue= 31|pages=9004–6 |date=2016 |doi=10.1002/anie.201604670 |pmid=27273799 |url=|doi-access=free }}</ref>
It is predicted that even the cation {{chem|PtO|4|2+}} in which platinum exists in the +10 oxidation state may be achievable.<ref>{{cite web |first=M. |last=Gunther |title=Oxidation state +10 may exist in a platinum compound |date=13 June 2016 |publisher=Chemistry World |url=https://www.chemistryworld.com/news/oxidation-state-10-may-exist-in-a-platinum-compound/1010184.article}}<br/>{{cite journal |first1=H.S. |last1=Yu |first2=D.G. |last2=Truhlar |title=Oxidation State 10 Exists |journal=Angew. Chem. Int. Ed. |volume=55 |issue= 31|pages=9004–6 |date=2016 |doi=10.1002/anie.201604670 |pmid=27273799 |bibcode=2016ACIE...55.9004Y |url=|doi-access=free }}</ref>


[[Zeise's salt]], containing an [[ethylene]] ligand, was one of the first [[organometallic compound]]s discovered. {{chem name|[[Dichloro(cycloocta-1,5-diene)platinum(II)]]}} is a commercially available [[Alkene|olefin]] complex, which contains easily displaceable [[1,5-Cyclooctadiene|cod ligands]] ("cod" being an abbreviation of 1,5-cyclooctadiene). The cod complex and the halides are convenient starting points to platinum chemistry.<ref name="han" />
[[Zeise's salt]], containing an [[ethylene]] ligand, was one of the first [[organometallic compound]]s discovered. {{chem name|[[Dichloro(cycloocta-1,5-diene)platinum(II)]]}} is a commercially available [[Alkene|olefin]] complex, which contains easily displaceable [[1,5-Cyclooctadiene|cod ligands]] ("cod" being an abbreviation of 1,5-cyclooctadiene). The cod complex and the halides are convenient starting points to platinum chemistry.<ref name="han" />
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|pmid=29394020|pages=1–42|chapter=Cisplatin and Oxaliplatin:Our Current Understanding of Their Actions}}</ref> Others include [[carboplatin]] and [[oxaliplatin]]. These compounds are capable of [[cross-link|crosslinking]] [[DNA]], and kill cells by similar pathways to alkylating [[chemotherapy|chemotherapeutic agents]].<ref name="Richards">{{cite journal|last1 = Richards|first1 = A. D.|last2 = Rodger|first2 = A.|date = 2007|title = Synthetic metallomolecules as agents for the control of DNA structure|journal = Chemical Society Reviews|volume = 36|pages = 471–483|doi = 10.1039/b609495c|pmid = 17325786|issue = 3|df = dmy-all|url = http://wrap.warwick.ac.uk/2189/1/WRAP_Richards_Revised_article1.pdf}}</ref> (Side effects of cisplatin include nausea and vomiting, hair loss, tinnitus, hearing loss, and nephrotoxicity.)<ref name="M.D.R.Ph.2014">{{cite book|last1=Carinder|first1=James A.|last2=Morrison|first2=Pilar M.|last3=Morrison|first3=David G.|author4=Jack E. Saux III|title=Practical Oncology Protocols|url=https://books.google.com/books?id=rxPaAwAAQBAJ&pg=PA22|access-date=11 June 2016|date=7 July 2014|publisher=Mill City Press, Incorporated|isbn=978-1-62652-816-1|page=22|url-status=live|archive-url=https://web.archive.org/web/20171109202329/https://books.google.com/books?id=rxPaAwAAQBAJ&pg=PA22|archive-date=9 November 2017|df=dmy-all}}</ref><ref name="TaguchiNazneen2005">{{Cite book|last1=Taguchi|first1=Takashi|last2=Nazneen|first2=Arifa|last3=Abid|first3=M. Ruhul|last4=Razzaque|first4=Mohammed S.|title=Cisplatin-Associated Nephrotoxicity and Pathological Events|year=2005|pages=107–121|doi=10.1159/000086055|pmid=15912030|volume=148|series=Contributions to Nephrology|isbn=978-3-8055-7858-5|s2cid=24509477}}</ref>
|pmid=29394020|pages=1–42|chapter=Cisplatin and Oxaliplatin:Our Current Understanding of Their Actions}}</ref> Others include [[carboplatin]] and [[oxaliplatin]]. These compounds are capable of [[cross-link|crosslinking]] [[DNA]], and kill cells by similar pathways to alkylating [[chemotherapy|chemotherapeutic agents]].<ref name="Richards">{{cite journal|last1 = Richards|first1 = A. D.|last2 = Rodger|first2 = A.|date = 2007|title = Synthetic metallomolecules as agents for the control of DNA structure|journal = Chemical Society Reviews|volume = 36|pages = 471–483|doi = 10.1039/b609495c|pmid = 17325786|issue = 3|df = dmy-all|url = http://wrap.warwick.ac.uk/2189/1/WRAP_Richards_Revised_article1.pdf}}</ref> (Side effects of cisplatin include nausea and vomiting, hair loss, tinnitus, hearing loss, and nephrotoxicity.)<ref name="M.D.R.Ph.2014">{{cite book|last1=Carinder|first1=James A.|last2=Morrison|first2=Pilar M.|last3=Morrison|first3=David G.|author4=Jack E. Saux III|title=Practical Oncology Protocols|url=https://books.google.com/books?id=rxPaAwAAQBAJ&pg=PA22|access-date=11 June 2016|date=7 July 2014|publisher=Mill City Press, Incorporated|isbn=978-1-62652-816-1|page=22|url-status=live|archive-url=https://web.archive.org/web/20171109202329/https://books.google.com/books?id=rxPaAwAAQBAJ&pg=PA22|archive-date=9 November 2017|df=dmy-all}}</ref><ref name="TaguchiNazneen2005">{{Cite book|last1=Taguchi|first1=Takashi|last2=Nazneen|first2=Arifa|last3=Abid|first3=M. Ruhul|last4=Razzaque|first4=Mohammed S.|title=Cisplatin-Associated Nephrotoxicity and Pathological Events|year=2005|pages=107–121|doi=10.1159/000086055|pmid=15912030|volume=148|series=Contributions to Nephrology|isbn=978-3-8055-7858-5|s2cid=24509477}}</ref>


[[Organoplatinum]] compounds such as the above antitumour agents, as well as soluble inorganic platinum complexes, are routinely characterised using [[Platinum-195 nuclear magnetic resonance|{{chem|195|Pt}} nuclear magnetic resonance spectroscopy]].
[[Organoplatinum]] compounds such as the above anti-tumor agents, as well as soluble inorganic platinum complexes, are routinely characterized using [[Platinum-195 nuclear magnetic resonance|{{chem|195|Pt}} nuclear magnetic resonance spectroscopy]].


<gallery widths="160px" heights="140px">
<gallery widths="160px" heights="140px">
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File:Dichloro(cycloocta-1,5-diene)platinum(II)-from-xtal-3D-balls-E.png|{{chem name|Dichloro(cycloocta-1,5-diene)platinum(II)}}
File:Dichloro(cycloocta-1,5-diene)platinum(II)-from-xtal-3D-balls-E.png|{{chem name|Dichloro(cycloocta-1,5-diene)platinum(II)}}
File:Cisplatin-3D-balls.png|Cisplatin</gallery>
File:Cisplatin-3D-balls.png|Cisplatin</gallery>
=== Non-reactivity with animal life ===
Platinum exposure has shown no adverse effects with animal life as it is one of the least reactive metals.<ref>{{citation |title=Air Quality Guidelines |date=2000 |df=dmy-all |archive-url=https://web.archive.org/web/20121018173735/http://www.euro.who.int/__data/assets/pdf_file/0015/123081/AQG2ndEd_6_11Platinum.PDF |archive-date=18 October 2012 |url-status=live |chapter=Chapter 6.11 Platinum |chapter-url=http://www.euro.who.int/__data/assets/pdf_file/0015/123081/AQG2ndEd_6_11Platinum.PDF |edition=2nd |publisher=WHO Regional Office for Europe, Copenhagen, Denmark}}</ref>
As platinum is a [[catalyst]] in the manufacture of the [[silicone rubber]] and gel components of several types of [[implant (medicine)|medical implants]] (breast implants, joint replacement prosthetics, artificial lumbar discs, vascular access ports, etc.), the possibility that platinum could enter the body and cause adverse effects has been studied. The [[Food and Drug Administration]] and other institutions have reviewed the issue and found no evidence to suggest toxicity [[in vivo]].<ref>{{cite web |title=FDA Backgrounder on Platinum in Silicone Breast Implants |url=https://www.fda.gov/cdrh/breastimplants/platinum.html |archive-url=https://web.archive.org/web/20080724070851/https://www.fda.gov/cdrh/breastimplants/platinum.html <!--Added by H3llBot--> |archive-date=24 July 2008 |access-date=9 September 2008 |publisher=U.S. Food and Drug Administration}}</ref><ref>{{cite journal |last=Brook |first=Michael |date=2006 |title=Platinum in silicone breast implants |journal=Biomaterials |volume=27 |issue=17 |pages=3274–86 |doi=10.1016/j.biomaterials.2006.01.027 |pmid=16483647}}</ref><ref name="fda">{{Cite web |title=187 Fake Cancer 'Cures' Consumers Should Avoid |url=https://www.fda.gov/Drugs/GuidanceComplianceRegulatoryInformation/EnforcementActivitiesbyFDA/ucm171057.htm |archive-url=https://web.archive.org/web/20170502034227/https://www.fda.gov/drugs/guidancecomplianceregulatoryinformation/enforcementactivitiesbyfda/ucm171057.htm |archive-date=May 2, 2017 |access-date=May 20, 2020 |publisher=U.S. [[Food and Drug Administration]]}}</ref>
==== Platinum salts ====
Short-term exposure to platinum salts may cause irritation of the eyes, nose, and throat, and long-term exposure may cause both respiratory and skin allergies. The current [[Occupational Safety and Health Administration|OSHA]] standard is 2&nbsp;micrograms per cubic meter of air averaged over an 8-hour work shift.<ref>{{cite web |title=Occupational Health Guideline for Soluble Platinum Salts (as Platinum) |url=https://www.cdc.gov/niosh/docs/81-123/pdfs/0520.pdf |url-status=live |archive-url=https://web.archive.org/web/20100311013818/http://www.cdc.gov/niosh/docs/81-123/pdfs/0520.pdf |archive-date=11 March 2010 |access-date=9 September 2008 |publisher=Centers for Disease Control and Prevention |df=dmy-all}}</ref>


==History==
==History==
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== Production ==
== Production ==
{{further|List of countries by platinum production}}
[[File:Platinum Mining.jpg|thumb|An aerial photograph of a platinum mine in South Africa. South Africa accounts for ~80% of global platinum production and a majority of the world's known platinum deposits.]]
[[File:Platinum world production.svg|thumb|Time trend of platinum production<ref>Kelly, Thomas D. and Matos, Grecia R. (2013)[http://minerals.usgs.gov/ds/2005/140 Historical Statistics for Mineral and Material Commodities in the United States] {{webarchive|url=https://web.archive.org/web/20130604121254/http://minerals.usgs.gov/ds/2005/140/ |date=4 June 2013 }}, U.S. Geological Survey</ref>]]
Platinum, along with the rest of the [[Platinum group|platinum-group metals]], is obtained commercially as a by-product from [[nickel]] and [[copper]] mining and processing. During [[Copper extraction techniques#Electrorefining|electrorefining of copper]], noble metals such as silver, gold and the platinum-group metals as well as [[selenium]] and [[tellurium]] settle to the bottom of the cell as "anode mud", which forms the starting point for the extraction of the platinum-group metals.<ref name="usgs2010-yearbook">{{cite web |url=http://minerals.usgs.gov/minerals/pubs/commodity/platinum/myb1-2010-plati.pdf |author=Loferski, P. J. |title=2010 Minerals Yearbook; Platinum-group metals |publisher=USGS Mineral Resources Program |date=October 2011 |access-date=17 July 2012 |url-status=live |archive-url=https://web.archive.org/web/20120708061140/http://minerals.usgs.gov/minerals/pubs/commodity/platinum/myb1-2010-plati.pdf |archive-date=8 July 2012 |df=dmy-all }}</ref>
Platinum, along with the rest of the [[Platinum group|platinum-group metals]], is obtained commercially as a by-product from [[nickel]] and [[copper]] mining and processing. During [[Copper extraction techniques#Electrorefining|electrorefining of copper]], noble metals such as silver, gold and the platinum-group metals as well as [[selenium]] and [[tellurium]] settle to the bottom of the cell as "anode mud", which forms the starting point for the extraction of the platinum-group metals.<ref name="usgs2010-yearbook">{{cite web |url=http://minerals.usgs.gov/minerals/pubs/commodity/platinum/myb1-2010-plati.pdf |author=Loferski, P. J. |title=2010 Minerals Yearbook; Platinum-group metals |publisher=USGS Mineral Resources Program |date=October 2011 |access-date=17 July 2012 |url-status=live |archive-url=https://web.archive.org/web/20120708061140/http://minerals.usgs.gov/minerals/pubs/commodity/platinum/myb1-2010-plati.pdf |archive-date=8 July 2012 |df=dmy-all }}</ref>


If pure platinum is found in [[placer deposits]] or other ores, it is isolated from them by various methods of subtracting impurities. Because platinum is significantly denser than many of its impurities, the lighter impurities can be removed by simply floating them away in a liquid. Platinum is [[paramagnetism|paramagnetic]], whereas nickel and iron are both [[Ferromagnetism|ferromagnetic]]. These two impurities are thus removed by running an electromagnet over the mixture. Because platinum has a higher melting point than most other substances, many impurities can be burned or melted away without melting the platinum. Finally, platinum is resistant to hydrochloric and sulfuric acids, whereas other substances are readily attacked by them. Metal impurities can be removed by stirring the mixture in either of the two acids and recovering the remaining platinum.<ref name="heiserman">{{cite book|title = Exploring Chemical Elements and their Compounds|last = Heiserman|first = David L.|pages = [https://archive.org/details/exploringchemica01heis/page/272 272–4]|publisher = TAB Books|isbn = 978-0-8306-3018-9|date = 1992|url = https://archive.org/details/exploringchemica01heis/page/272}}</ref>
If pure platinum is found in [[placer deposits]] or other ores, it is isolated from them by various methods of subtracting impurities. Because platinum is significantly denser than many of its impurities, the lighter impurities can be removed by simply floating them away in a liquid. Platinum is [[paramagnetism|paramagnetic]], whereas nickel and iron are both [[Ferromagnetism|ferromagnetic]]. These two impurities are thus removed by running an electromagnet over the mixture. Because platinum has a higher melting point than most other substances, many impurities can be burned or melted away without melting the platinum. Finally, platinum is resistant to hydrochloric and sulfuric acids, whereas other substances are readily attacked by them. Metal impurities can be removed by stirring the mixture in either of the two acids and recovering the remaining platinum.<ref name="heiserman">{{cite book|title = Exploring Chemical Elements and their Compounds|last = Heiserman|first = David L.|pages = [https://archive.org/details/exploringchemica01heis/page/272 272–4]|publisher = TAB Books|isbn = 978-0-8306-3018-9|date = 1992|url = https://archive.org/details/exploringchemica01heis/page/272}}</ref>


One suitable method for purification for the raw platinum, which contains platinum, gold, and the other platinum-group metals, is to process it with ''aqua regia'', in which palladium, gold and platinum are dissolved, whereas osmium, iridium, ruthenium and rhodium stay unreacted. The gold is precipitated by the addition of [[iron(II) chloride]] and after filtering off the gold, the platinum is precipitated as [[Ammonium hexachloroplatinate|ammonium chloroplatinate]] by the addition of [[ammonium chloride]]. Ammonium chloroplatinate can be converted to platinum by heating.<ref>{{cite journal|first1 = L. B.|last1 = Hunt|last2 = Lever|first2 = F. M.|journal = Platinum Metals Review|volume = 13|issue = 4|date = 1969|pages = 126–138|title = Platinum Metals: A Survey of Productive Resources to industrial Uses| doi=10.1595/003214069X134126138 |url = http://www.platinummetalsreview.com/pdf/pmr-v13-i4-126-138.pdf|url-status = live|archive-url = https://web.archive.org/web/20081029205825/http://www.platinummetalsreview.com/pdf/pmr-v13-i4-126-138.pdf|archive-date = 29 October 2008|df = dmy-all}}</ref> Unprecipitated hexachloroplatinate(IV) may be reduced with elemental [[zinc]], and a similar method is suitable for small scale recovery of platinum from laboratory residues.<ref>{{Cite book | series = Inorg. Synth. | author1 = Kauffman, George B. | author2 = Teter, Larry A. | author3 = Rhoda, Richard N. | title = Inorganic Syntheses | chapter = Recovery of Platinum from Laboratory Residues | name-list-style = amp| doi = 10.1002/9780470132388.ch61 | date = 1963 | isbn = 978-0-470-13238-8 | volume = 7 | pages = 232–6}}</ref> Mining and refining platinum has environmental impacts.<ref>{{cite web |url=http://www.thejournalist.org.za/wp-content/uploads/2014/09/Environmental-health-impacts-of-platinum-mining1.pdf |title=Health and environmental impacts of platinum mining: Report from South Africa |date=March 2014 |first=E. |last=Cairncross |access-date=2016-10-04 |url-status=live |archive-url=https://web.archive.org/web/20161005130944/http://www.thejournalist.org.za/wp-content/uploads/2014/09/Environmental-health-impacts-of-platinum-mining1.pdf |archive-date=5 October 2016 |df=dmy-all }}</ref>
One suitable method for purification for the raw platinum, which contains platinum, gold, and the other platinum-group metals, is to process it with ''aqua regia'', in which palladium, gold and platinum are dissolved, whereas osmium, iridium, ruthenium and rhodium stay unreacted. The gold is precipitated by the addition of [[iron(II) chloride]] and after filtering off the gold, the platinum is precipitated as [[Ammonium hexachloroplatinate|ammonium chloroplatinate]] by the addition of [[ammonium chloride]]. Ammonium chloroplatinate can be converted to platinum by heating.<ref>{{cite journal|first1 = L. B.|last1 = Hunt|last2 = Lever|first2 = F. M.|journal = Platinum Metals Review|volume = 13|issue = 4|date = 1969|pages = 126–138|title = Platinum Metals: A Survey of Productive Resources to industrial Uses| doi=10.1595/003214069X134126138 |url = http://www.platinummetalsreview.com/pdf/pmr-v13-i4-126-138.pdf|url-status = live|archive-url = https://web.archive.org/web/20081029205825/http://www.platinummetalsreview.com/pdf/pmr-v13-i4-126-138.pdf|archive-date = 29 October 2008|df = dmy-all}}</ref> Unprecipitated hexachloroplatinate(IV) may be reduced with elemental [[zinc]], and a similar method is suitable for small scale recovery of platinum from laboratory residues.<ref>{{Cite book | series = Inorg. Synth. | author1 = Kauffman, George B. | author2 = Teter, Larry A. | author3 = Rhoda, Richard N. | title = Inorganic Syntheses | chapter = Recovery of Platinum from Laboratory Residues | name-list-style = amp| doi = 10.1002/9780470132388.ch61 | date = 1963 | isbn = 978-0-470-13238-8 | volume = 7 | pages = 232–6}}</ref> Mining and refining platinum has environmental impacts.<ref>{{cite web |url=http://www.thejournalist.org.za/wp-content/uploads/2014/09/Environmental-health-impacts-of-platinum-mining1.pdf |title=Health and environmental impacts of platinum mining: Report from South Africa |date=March 2014 |first=E. |last=Cairncross |access-date=2016-10-04 |url-status=live |archive-url=https://web.archive.org/web/20161005130944/http://www.thejournalist.org.za/wp-content/uploads/2014/09/Environmental-health-impacts-of-platinum-mining1.pdf |archive-date=5 October 2016 |df=dmy-all }}</ref>{{srn}}{{table alignment}}
[[File:Platinum Mining.jpg|thumb|An aerial photograph of a platinum mine in South Africa.]]
[[File:Platinum world production.svg|thumb|Time trend of platinum production<ref>Kelly, Thomas D. and Matos, Grecia R. (2013)[http://minerals.usgs.gov/ds/2005/140 Historical Statistics for Mineral and Material Commodities in the United States] {{webarchive|url=https://web.archive.org/web/20130604121254/http://minerals.usgs.gov/ds/2005/140/|date=4 June 2013}}, U.S. Geological Survey</ref>]]
{| class="wikitable sortable static-row-numbers col1left" style="text-align:right;"
|+Platinum production by country<ref name=":0">{{cite news | url=http://www.thehindu.com/news/cities/Chennai/article495603.ece | location=Chennai, India | work=The Hindu | title=Evidence of huge deposits of platinum in State | date=2 July 2010 | url-status=live | archive-url=https://web.archive.org/web/20111206102946/http://www.thehindu.com/news/cities/Chennai/article495603.ece | archive-date=6 December 2011 | df=dmy-all }}</ref><ref>{{Cite web |title=World mineral statistics data |url=https://www.bgs.ac.uk/mineralsuk/statistics/world-mineral-statistics/world-mineral-statistics-data-download/world-mineral-statistics-data/ |access-date=2025-09-17 |website=MineralsUK |language=en-GB}}</ref>
! Country !! Production (kg)
!Year
|-
|'''{{noflag}}World'''||'''170,000'''
|'''2024'''
|-
|{{flag|South Africa}} ||120,000
|2024
|-
|{{flag|Zimbabwe}} ||19,000
|2024
|-
|{{flag|Russia}} ||18,000
|2024
|-
|{{flag|Canada}} ||5,200
|2024
|-
|{{Flag|China}}
|2,800
|2022
|-
|{{flag|United States}}||2,000
|2024
|-
|{{flag|Finland}}||1,243
|2022
|-
|{{flag|Colombia}}||501
|2022
|-
|{{flag|Australia}}||100
|2022
|-
|{{flag|Ethiopia}}||30
|2022
|-
|{{flag|Serbia}}||10
|2022
|-
|{{flag|Poland}}||5
|2022
|}


==Applications==
== Applications ==
[[File:Aufgeschnittener Metall Katalysator für ein Auto.jpg|thumb|Cutaway view of a [[Catalytic converter|metal-core catalytic converter]]]]
[[File:Aufgeschnittener Metall Katalysator für ein Auto.jpg|thumb|Cutaway view of a [[Catalytic converter|metal-core catalytic converter]]]]


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{{main|Platinum as an investment|Platinum coin}}
{{main|Platinum as an investment|Platinum coin}}


Platinum is a [[precious metal]] [[commodity]]; its [[bullion]] has the [[ISO currency code]] of XPT. Coins, bars, and ingots are traded or collected. Platinum finds use in jewelry, commonly sold as .999 or .9995 fine. It is used for this purpose for its prestige and inherent bullion value.<ref>{{cite web|url = http://www.professionaljeweler.com/archives/articles/2004/aug04/0804fys.html|title = Professional Jeweler's Magazine Archives, issue of August 2004|access-date = 19 June 2011|url-status = live|archive-url = https://web.archive.org/web/20110928115918/http://www.professionaljeweler.com/archives/articles/2004/aug04/0804fys.html|archive-date = 28 September 2011|df = dmy-all}}</ref><ref>{{cite web|url = http://www.diamondcuttersintl.com/a-platinum-primer|title = Platinum primer|publisher = Diamond Cutters International|access-date = 18 June 2011|url-status = live|archive-url = https://web.archive.org/web/20110927045943/http://www.diamondcuttersintl.com/a-platinum-primer/|archive-date = 27 September 2011|df = dmy-all|date = 2008-12-12}}</ref>  
Platinum is a [[precious metal]] [[commodity]]; its [[bullion]] has the [[ISO currency code]] of XPT. Coins, bars, and ingots are traded or collected. Platinum finds use in jewelry, commonly sold as .999 or .9995 fine. It is used for this purpose for its prestige and inherent bullion value.<ref>{{cite web|url = http://www.professionaljeweler.com/archives/articles/2004/aug04/0804fys.html|title = Professional Jeweler's Magazine Archives, issue of August 2004|access-date = 19 June 2011|url-status = live|archive-url = https://web.archive.org/web/20110928115918/http://www.professionaljeweler.com/archives/articles/2004/aug04/0804fys.html|archive-date = 28 September 2011|df = dmy-all}}</ref><ref>{{cite web|url = http://www.diamondcuttersintl.com/a-platinum-primer|title = Platinum primer|publisher = Diamond Cutters International|access-date = 18 June 2011|url-status = live|archive-url = https://web.archive.org/web/20110927045943/http://www.diamondcuttersintl.com/a-platinum-primer/|archive-date = 27 September 2011|df = dmy-all|date = 2008-12-12}}</ref>


As of 2024, the American multinational warehouse club chain, [[Costco]], sells platinum bars on its website.<ref>{{Cite web |last=Lee |first=Jinjoo |title=Costco Members Are Buying Platinum. Should You? |url=https://www.wsj.com/finance/commodities-futures/costco-members-are-buying-platinum-should-you-0b532204 |access-date=2025-06-24 |website=WSJ |language=en-US}}</ref>
In watchmaking, [[Rolex]],<ref>{{Cite web |title=Rolex platinum watches |url=https://www.rolex.com/en-us/watches/find-rolex/platinum |access-date=2025-11-04 |website=www.rolex.com |language=en-us}}</ref> [[Vacheron Constantin]],<ref>[https://www.vacheron-constantin.com/ww/en/collections/traditionnelle/82172-000p-h062.html Traditionnelle manual-winding - 38 mm - Platinum Watch]</ref> [[Patek Philippe]],<ref>{{Cite web |last=GENEVE |first=PATEK PHILIPPE SA |title=Calatrava ref. 6196P-001 Platinum |url=https://www.patek.com/en/collection/calatrava/6196p-001 |access-date=2025-11-04 |website=Patek Philippe SA |language=en}}</ref> [[Breitling SA|Breitling]],<ref>{{Cite web |title=Precious Materials Collection |url=https://www.breitling.com/us-en/watches/precious-materials/ |access-date=2025-11-04 |website=www.breitling.com |language=en-US}}</ref> and other master watchmakers use platinum in select watches. Watchmakers appreciate the unique properties of platinum, as it is more durable than gold, but similar to gold as it does not tarnish.<ref>{{cite web|url = http://watches.infoniac.com/index.php?page=post&id=44|title = Unknown Facts about Platinum|publisher = watches.infoniac.com|access-date = 9 September 2008|url-status = dead|archive-url = https://web.archive.org/web/20080921210250/http://watches.infoniac.com/index.php?page=post&id=44|archive-date = 21 September 2008|df = dmy-all}}</ref>


In watchmaking, [[Rolex]], [[Vacheron Constantin]], [[Patek Philippe]], [[Breitling SA|Breitling]], and other companies use platinum in select watches. Watchmakers appreciate the unique properties of platinum, as it is more durable than gold, but similar to gold as it does not tarnish.<ref>{{cite web|url = http://watches.infoniac.com/index.php?page=post&id=44|title = Unknown Facts about Platinum|publisher = watches.infoniac.com|access-date = 9 September 2008|url-status = dead|archive-url = https://web.archive.org/web/20080921210250/http://watches.infoniac.com/index.php?page=post&id=44|archive-date = 21 September 2008|df = dmy-all}}</ref>
During periods of sustained economic stability and growth, the price of platinum can exceed that of the price of gold.<ref name="TheSpeculativeInvestor">{{cite web|title = Platinum versus Gold|publisher = The Speculative Invertor|url = http://www.speculative-investor.com/new/article150402.html|date = 14 April 2002|url-status = dead|archive-url = https://web.archive.org/web/20081026073657/http://www.speculative-investor.com/new/article150402.html|archive-date = 26 October 2008|df = dmy-all}}</ref> As an investment, platinum is similar to gold in being a relatively low risk investment, or "safe-haven", in times of economic crisis.<ref>{{cite journal|title=Are safe haven assets really safe during the 2008 global financial crisis and COVID-19 pandemic? |first1= MB |last1=Hasan |first2=MK |last2=Hassan |first3=MM |last3=Rashid |first4=Y |last4=Alhenawi |doi=10.1016/j.gfj.2021.100668 |journal=Global Finance Journal |issue=3 |pages=1–11 |year=2021 |volume= 50 |pmid=8575456|pmc=8575456 }}</ref> When the price of gold has exceeded that of platinum, many buyers in major markets, including the famous Dubai "[[gold souk]]" have turned to buying platinum instead for investment and for jewelry.<ref>{{Cite web |title=Gold for investment, platinum for jewellery? Dubai market reacts as prices cross Dh500 |url=https://www.khaleejtimes.com/business/markets/gold-record-high-platinum-jewellery |access-date=2025-10-15 |website=Khaleej Times |language=en}}</ref>


During periods of sustained economic stability and growth, the price of platinum can exceed that of the price of gold.<ref name="TheSpeculativeInvestor">{{cite web|title = Platinum versus Gold|publisher = The Speculative Invertor|url = http://www.speculative-investor.com/new/article150402.html|date = 14 April 2002|url-status = dead|archive-url = https://web.archive.org/web/20081026073657/http://www.speculative-investor.com/new/article150402.html|archive-date = 26 October 2008|df = dmy-all}}</ref> As an investment, platinum is similar to gold in being a relatively low risk investment, or "safe-haven", in times of economic crisis.<ref>{{cite journal|title=Are safe haven assets really safe during the 2008 global financial crisis and COVID-19 pandemic? |first1= MB |last1=Hasan |first2=MK |last2=Hassan |first3=MM |last3=Rashid |first4=Y |last4=Alhenawi |doi=10.1016/j.gfj.2021.100668 |journal=Global Finance Journal |issue=3 |pages=1–11 |year=2021 |volume= 50 |pmid=8575456|pmc=8575456 }}</ref>
In the 18th century King [[Louis XV]] of France said of platinum that it is "the only metal fit for a king", owing to platinum's scarcity, traits, and intrinsic value.<ref name="mineralszone">{{cite web |title=Platinum |publisher=Minerals Zone |url=http://www.mineralszone.com/minerals/platinum.html |access-date=9 September 2008 |url-status=dead |archive-url=https://web.archive.org/web/20081012110510/http://www.mineralszone.com/minerals/platinum.html |archive-date=12 October 2008 |df=dmy-all }}</ref>


In the 18th century, platinum's scarcity, traits, and intrinsic value made King [[Louis XV]] of France declare it "the only metal fit for a king".<ref name="mineralszone">{{cite web |title=Platinum |publisher=Minerals Zone |url=http://www.mineralszone.com/minerals/platinum.html |access-date=9 September 2008 |url-status=dead |archive-url=https://web.archive.org/web/20081012110510/http://www.mineralszone.com/minerals/platinum.html |archive-date=12 October 2008 |df=dmy-all }}</ref>
As of 2024, the American multinational warehouse club chain, [[Costco]], sells platinum bars on its website.<ref>{{Cite web |last=Lee |first=Jinjoo |title=Costco Members Are Buying Platinum. Should You? |url=https://www.wsj.com/finance/commodities-futures/costco-members-are-buying-platinum-should-you-0b532204 |access-date=2025-06-24 |website=WSJ |date=14 October 2024 |language=en-US}}</ref>


<gallery widths="200px" heights="160px">
<gallery widths="200px" heights="160px">
File:One litre of Platinum.jpg|1,000 cubic centimeters of 99.9% pure platinum, worth about US$696,000 at 29 Jun 2016 prices<ref name="WolframAlpha">{{cite web|title=21.09kg Pt|url=http://www.wolframalpha.com/input/?i=21.09kg+Pt|publisher=WolframAlpha|access-date=14 July 2012|url-status=live|archive-url=https://web.archive.org/web/20140823232339/http://www.wolframalpha.com/input/?i=21.09kg+Pt|archive-date=23 August 2014|df=dmy-all}}</ref>
File:One litre of Platinum.jpg|1,000 cubic centimeters of 99.9% pure platinum, worth about US$696,000 as of 29 Jun 2016 (${{Inflation|index=US|value=696,000|start_year=2016|r=0|fmt=c|cursign=$}} adjusted for inflation)<ref name="WolframAlpha">{{cite web|title=21.09kg Pt|url=http://www.wolframalpha.com/input/?i=21.09kg+Pt|publisher=WolframAlpha|access-date=14 July 2012|url-status=live|archive-url=https://web.archive.org/web/20140823232339/http://www.wolframalpha.com/input/?i=21.09kg+Pt|archive-date=23 August 2014|df=dmy-all}}</ref>
File:Platinum price.webp|Platinum price 1970–2022
File:Platinum price.webp|Platinum price 1970–2022
</gallery>
</gallery>
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{{see also|Platinum album|Platinum (color)}}
{{see also|Platinum album|Platinum (color)}}


Platinum's rarity as a metal has caused advertisers to associate it with exclusivity and wealth. "Platinum" [[Payment card|debit and credit cards]] have greater privileges than "[[gold]]" cards.<ref>{{cite journal|last1 = Gwin|first1 = John|title = Pricing Financial Institution Products|journal = Journal of Professional Services Marketing|volume = 1|pages = 91–99|date = 1986|doi = 10.1300/J090v01n03_07|issue = 3}}</ref> "[[RIAA certification|Platinum awards]]" are frequently the highest, or near highest possible, often ranking above "gold", "[[silver]]" and "[[bronze]]". For example, in the United States, a musical album that has sold more than 1&nbsp;million copies will be credited as "platinum", though an album that has sold more than 10&nbsp;million copies will be certified as "diamond".<ref>{{cite book|page = 126|url = https://books.google.com/books?id=dYFv3ifE0f4C&pg=PA126|title = Big Bang Baby: The Rock Trivia Book|isbn = 978-0-88882-219-2|author1 = Crouse, Richard|date = 1 May 2000| publisher=Dundurn |url-status = live|archive-url = https://web.archive.org/web/20170324034507/https://books.google.com/books?id=dYFv3ifE0f4C&pg=PA126|archive-date = 24 March 2017|df = dmy-all}}</ref> Some products, such as blenders and vehicles, with a silvery-white color are identified as "platinum". Platinum is considered a precious metal, although its use is not as common as the use of gold or silver. The frame of the [[Crown of Queen Elizabeth The Queen Mother]], manufactured for her coronation as Consort of [[King George VI]], is made of platinum. It was the first British crown to be made of this particular metal.<ref>{{cite book|url = https://books.google.com/books?id=SImTll3uupIC&pg=PA312|title = The Signs and Symbols Bible: The Definitive Guide to Mysterious Markings|isbn = 978-1-4027-7004-3|author1 = Gauding, Madonna|date = 6 October 2009| publisher=Sterling Publishing Company |url-status = live|archive-url = https://web.archive.org/web/20170324014245/https://books.google.com/books?id=SImTll3uupIC&pg=PA312|archive-date = 24 March 2017|df = dmy-all}}</ref>
Platinum's rarity as a metal has caused advertisers to associate it with exclusivity and wealth. "Platinum" [[Payment card|debit and credit cards]] have greater privileges than "[[gold]]" cards.<ref>{{cite journal|last1 = Gwin|first1 = John|title = Pricing Financial Institution Products|journal = Journal of Professional Services Marketing|volume = 1|pages = 91–99|date = 1986|doi = 10.1300/J090v01n03_07|issue = 3}}</ref> "[[RIAA certification|Platinum awards]]" are frequently the highest, or near highest possible, often ranking above "gold", "[[silver]]" and "[[bronze]]". In the United States, a musical album that has sold more than 1&nbsp;million copies will be credited as "platinum".<ref>{{cite book|page = 126|url = https://books.google.com/books?id=dYFv3ifE0f4C&pg=PA126|title = Big Bang Baby: The Rock Trivia Book|isbn = 978-0-88882-219-2|author1 = Crouse, Richard|date = 1 May 2000| publisher=Dundurn |url-status = live|archive-url = https://web.archive.org/web/20170324034507/https://books.google.com/books?id=dYFv3ifE0f4C&pg=PA126|archive-date = 24 March 2017|df = dmy-all}}</ref> Some products, such as blenders and vehicles, with a silvery-white color are identified as "platinum". The frame of the [[Crown of Queen Elizabeth The Queen Mother]], manufactured for her coronation as Consort of [[King George VI]], is made of platinum. It was the first British crown to be made of this particular metal.<ref>{{cite book|url = https://books.google.com/books?id=SImTll3uupIC&pg=PA312|title = The Signs and Symbols Bible: The Definitive Guide to Mysterious Markings|isbn = 978-1-4027-7004-3|author1 = Gauding, Madonna|date = 6 October 2009| publisher=Sterling Publishing Company |url-status = live|archive-url = https://web.archive.org/web/20170324014245/https://books.google.com/books?id=SImTll3uupIC&pg=PA312|archive-date = 24 March 2017|df = dmy-all}}</ref>
 
==Health risks==
Elemental platinum is not believed to cause significant health risks and no adverse effects have been attributed to platinum exposure.<ref>{{citation|chapter-url=http://www.euro.who.int/__data/assets/pdf_file/0015/123081/AQG2ndEd_6_11Platinum.PDF|title=Air Quality Guidelines|edition=2nd|chapter=Chapter 6.11 Platinum|publisher=WHO Regional Office for Europe, Copenhagen, Denmark|date=2000|url-status=live|archive-url=https://web.archive.org/web/20121018173735/http://www.euro.who.int/__data/assets/pdf_file/0015/123081/AQG2ndEd_6_11Platinum.PDF|archive-date=18 October 2012|df=dmy-all}}</ref>
The [[National Institute for Occupational Safety and Health]] has set a [[recommended exposure limit]] (REL) for platinum as 1&nbsp;mg/m<sup>3</sup> over an 8-hour workday.<ref>{{Cite web|title = CDC – NIOSH Pocket Guide to Chemical Hazards – Platinum|url = https://www.cdc.gov/niosh/npg/npgd0519.html|website = www.cdc.gov|access-date = 2015-11-21|url-status = live|archive-url = https://web.archive.org/web/20151121070907/http://www.cdc.gov/niosh/npg/npgd0519.html|archive-date = 21 November 2015|df = dmy-all}}</ref>
 
As platinum is a [[catalyst]] in the manufacture of the [[silicone rubber]] and gel components of several types of [[implant (medicine)|medical implants]] (breast implants, joint replacement prosthetics, artificial lumbar discs, vascular access ports, etc.), the possibility that platinum could enter the body and cause adverse effects has merited study. The [[Food and Drug Administration]] and other institutions have reviewed the issue and found no evidence to suggest toxicity [[in vivo]].<ref>{{cite web |url=https://www.fda.gov/cdrh/breastimplants/platinum.html |title=FDA Backgrounder on Platinum in Silicone Breast Implants |publisher=U.S. Food and Drug Administration |access-date=9 September 2008 |archive-url=https://web.archive.org/web/20080724070851/https://www.fda.gov/cdrh/breastimplants/platinum.html <!--Added by H3llBot--> |archive-date=24 July 2008}}</ref><ref>{{cite journal|first = Michael|last = Brook|title = Platinum in silicone breast implants|journal = Biomaterials|volume = 27|date = 2006|doi = 10.1016/j.biomaterials.2006.01.027|issue = 17|pages = 3274–86|pmid = 16483647}}</ref> Chemically unbonded (metallic, colloidal, or amalgam) platinum has been identified by the FDA as a "fake cancer 'cure'".<ref name="fda">{{Cite web |url=https://www.fda.gov/Drugs/GuidanceComplianceRegulatoryInformation/EnforcementActivitiesbyFDA/ucm171057.htm |title=187 Fake Cancer 'Cures' Consumers Should Avoid |publisher=U.S. [[Food and Drug Administration]] |archive-url=https://web.archive.org/web/20170502034227/https://www.fda.gov/drugs/guidancecomplianceregulatoryinformation/enforcementactivitiesbyfda/ucm171057.htm |archive-date=May 2, 2017 |access-date=May 20, 2020}}</ref>
 
Short-term exposure to platinum salts may cause irritation of the eyes, nose, and throat, and long-term exposure may cause both respiratory and skin allergies. The current [[Occupational Safety and Health Administration|OSHA]] standard is 2&nbsp;micrograms per cubic meter of air averaged over an 8-hour work shift.<ref>{{cite web |url=https://www.cdc.gov/niosh/docs/81-123/pdfs/0520.pdf |title=Occupational Health Guideline for Soluble Platinum Salts (as Platinum) |publisher=Centers for Disease Control and Prevention |access-date=9 September 2008 |url-status=live |archive-url=https://web.archive.org/web/20100311013818/http://www.cdc.gov/niosh/docs/81-123/pdfs/0520.pdf |archive-date=11 March 2010 |df=dmy-all }}</ref>


== See also ==
== See also ==

Latest revision as of 14:39, 17 November 2025

Script error: No such module "about". Script error: No such module "Distinguish". Template:Good article Template:Pp-move Template:Use dmy dates Template:Use American English Template:Infobox platinum

Platinum is a chemical element; it has symbol Pt and atomic number 78. It is a dense, malleable, ductile, highly unreactive, precious, silverish-white transition metal. Its name originates from Spanish Script error: No such module "Lang"., a diminutive of Script error: No such module "Lang". "silver".[1][2]

Platinum is a member of the platinum group of elements and group 10 of the periodic table of elements. It has six naturally occurring isotopes. It is one of the rarer elements in Earth's crust, with an average abundance of approximately 5 μg/kg.[3] It occurs in some nickel and copper ores along with some native deposits, with deposits from across Russia's Ural Mountains, Colombia, the Sudbury basin of Canada, and a large reserve in South Africa all accounting for a major portion of mined platinum.[3]Template:Rp Because of its scarcity in Earth's crust, barely a few hundred metric tonnes are produced annually, and given its important uses, it is highly valuable as well as a major precious metal commodity.

Platinum does not corrode, even at high temperatures, and is therefore considered a noble metal. Consequently, platinum is often found chemically uncombined as native platinum. Because it occurs naturally in the alluvial sands of various rivers, it was first used by pre-Columbian South American natives to produce artifacts. It was referenced in European writings as early as the 16th century, but it was not until Antonio de Ulloa published a report on a new metal of Colombian origin in 1748 that it began to be investigated by scientists.

Platinum is used in catalytic converters, laboratory equipment, electrical contacts and electrodes, platinum resistance thermometers, dentistry equipment, and jewelry. Platinum is used in the glass industry[4] to manipulate molten glass, which does not "wet" platinum. Elemental platinum has not been linked to adverse health effects. Compounds containing platinum, such as cisplatin, oxaliplatin and carboplatin, are applied in chemotherapy as treatment for certain types of cancer.[5]

Characteristics

Physical

Platinum is a lustrous, ductile, and malleable, silver-white metal.[6] Platinum is more ductile than gold, silver or copper, thus being the most ductile of pure metals.[7][8]

Its physical characteristics and chemical stability make it useful for industrial applications.[9] Its resistance to wear and tarnish is well suited to use in fine jewelry.[10]

Chemical

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File:Platin löst sich in heißem Königswasser.jpg
Platinum being dissolved in hot aqua regia

Platinum does not corrode, and bulk platinum does not oxidize in air at any temperature, but heated metal wires lose weight faster in air or oxygen than it does in a vacuum. The suggestion is that Pt forms a thin surface film of [[Platinum dioxide|Template:Chem2]] that decomposes when heated above 500 °C.[11]

The most common oxidation states of platinum are +2 and +4. The +1 and +3 oxidation states are less common, and are often stabilized by metal bonding in bimetallic (or polymetallic) species. Tetracoordinate platinum(II) compounds tend to adopt 16-electron square planar geometries. Although elemental platinum is generally unreactive, it is attacked by chlorine, bromine, iodine, and sulfur. It reacts vigorously with fluorine at Template:Convert to form platinum tetrafluoride.[12] Platinum is insoluble in hydrochloric and nitric acid, but dissolves in hot aqua regia (a mixture of nitric and hydrochloric acids), to form aqueous chloroplatinic acid, Template:Chem2:[13][14]

Template:Chem2

As a soft acid, the Template:Chem2 ion has a great affinity for sulfide and sulfur ligands. Numerous DMSO complexes have been reported and care is taken in the choosing of reaction solvents.[15]

In 2007, the German scientist Gerhard Ertl won the Nobel Prize in Chemistry for determining the detailed molecular mechanisms of the catalytic oxidation of carbon monoxide over platinum (catalytic converter).[16]

Isotopes

Script error: No such module "Labelled list hatnote". Platinum has six naturally occurring isotopes: Template:Chem, Template:Chem, Template:Chem, Template:Chem, Template:Chem, and Template:Chem. The most abundant of these is Template:Chem, comprising 33.83% of all platinum; it is the only stable isotope with a non-zero spin, of 1/2, and it is favorable for use in [[Platinum-195 nuclear magnetic resonance|Template:Chem NMR]]. Due to its spin and large abundance, Template:Chem satellite peaks are also often observed in Template:Chem and Template:Chem NMR spectroscopy (e.g., for Pt-phosphine and Pt-alkyl complexes). The radioactive Template:Chem is the least abundant of these at only 0.012%; it undergoes alpha decay with a half-life of 4.83Template:E years, causing the very low activity of 16.8 Bq/kg of natural platinum.[17] The decay of this isotope has some use in isotope geology, though not directly for dating.[18]

The other natural isotopes are theoretically capable of alpha decay also, but this has never been observed, and therefore they are considered stable.[19] Platinum also has 38 synthetic isotopes ranging in atomic mass from 165 to 208, making the total number of known isotopes 44. The most stable of these radioisotopes is Template:Chem, with a half-life of 50 years. Most platinum isotopes decay by some combination of beta decay and (on the proton-rich side) alpha decay. Template:Chem, Template:Chem, and Template:Chem decay only by electron capture (besides the very small alpha branch of the first). Template:Chem and Template:Chem are predicted to have energetically favorable double beta decay paths.[17]

Occurrence

File:Platinum-nugget.jpg
A native platinum nugget, Kondyor mine, Khabarovsk Krai
File:Platinum-palladium ore, Stillwater mine MT.JPG
Platinum-palladium ore, Stillwater mine, Beartooth Mountains, Montana, US
File:Sulfidic serpentintite (platinum-palladium ore) Johns-Manville Reef, Stillwater Complex.jpg
Sulfidic serpentinite (platinum-palladium ore) from Stillwater Mine, Beartooth Mountains, Montana, USA

Platinum is an extremely rare metal on Earth,[20] occurring at a concentration of only 0.005 ppm in Earth's crust.[21][22] Platinum is often found chemically uncombined as native platinum and as alloy with the other platinum-group metals mostly. Most often native platinum is found in secondary deposits among alluvial deposits. The alluvial deposits used by pre-Columbian people in the Chocó Department, Colombia are still a source for platinum-group metals. Another large alluvial deposit is in the Ural Mountains, Russia, and it is still mined.[14]

In nickel and copper deposits, platinum-group metals occur as sulfides (e.g., Template:Chem2, tellurides (e.g., Template:Chem2), antimonides (PdSb), and arsenides (e.g. Template:Chem2), and as end alloys with nickel or copper. Platinum arsenide, sperrylite (Template:Chem2), is a major source of platinum associated with nickel ores in the Sudbury Basin deposit in Ontario, Canada. At Platinum, Alaska, about Template:Convert was mined between 1927 and 1975. The mine ceased operations in 1990.[23] The rare sulfide mineral cooperite, Template:Chem2, contains platinum along with palladium and nickel. Cooperite occurs in the Merensky Reef within the Bushveld complex, Gauteng, South Africa.[24]

In 1865, chromites were identified in the Bushveld region of South Africa, followed by the discovery of platinum in 1906.[25] In 1924, the geologist Hans Merensky discovered a large supply of platinum in the Bushveld Igneous Complex in South Africa. The specific layer he found, named the Merensky Reef, contains around 75% of the world's known platinum.[26][27] The large copper–nickel deposits near Norilsk in Russia, and the Sudbury Basin, Canada, are the two other large deposits. In the Sudbury Basin, the huge quantities of nickel ore processed make up for the fact platinum is present as only 0.5 ppm in the ore. Smaller reserves can be found in the United States,[27] for example in the Absaroka Range in Montana.[28] In 2010, South Africa was the top producer of platinum, with an almost 77% share, followed by Russia at 13%; world production in 2010 was Template:Convert.[29]

Advanced techniques to finding platinum deposits by studying ground water found some evidence of new deposits in the state of Tamil Nadu, India.[30]

Platinum exists in somewhat higher quantity on the Moon and in meteorites. Correspondingly, platinum is found in slightly higher abundances at sites of bolide impact on Earth that are associated with resulting post-impact volcanism and can be mined economically; the Sudbury Basin is one such example.[31]

Compounds

Halides

Hexachloroplatinic acid mentioned above is probably the most important platinum compound, as it serves as the precursor for many other platinum compounds. By itself, it has various applications in photography, zinc etchings, indelible ink, plating, mirrors, porcelain coloring, and as a catalyst.[32]

Treatment of hexachloroplatinic acid with an ammonium salt, such as ammonium chloride, gives ammonium hexachloroplatinate,[13] which is relatively insoluble in ammonium solutions. Heating this ammonium salt in the presence of hydrogen reduces it to elemental platinum. Potassium hexachloroplatinate is similarly insoluble, and hexachloroplatinic acid has been used in the determination of potassium ions by gravimetry.[33]

When hexachloroplatinic acid is heated, it decomposes through platinum(IV) chloride and platinum(II) chloride to elemental platinum, although the reactions do not occur stepwise:[34]

Template:Chem2
Template:Chem2
Template:Chem2

All three reactions are reversible. Platinum(II) and platinum(IV) bromides are known as well. Platinum hexafluoride is a strong oxidizer capable of oxidizing oxygen.

Oxides

Platinum(IV) oxide, Template:Chem2, also known as "Adams' catalyst", is a black powder that is soluble in potassium hydroxide (KOH) solutions and concentrated acids.[35] Template:Chem2 and the less common Template:Chem2 both decompose upon heating.[6] Platinum(II,IV) oxide, Template:Chem2, is formed in the following reaction:

Template:Chem2

Other compounds

Unlike palladium acetate, platinum(II) acetate is not commercially available. Where a base is desired, the halides have been used in conjunction with sodium acetate.[15] The use of platinum(II) acetylacetonate has also been reported.[36]

Platinum exhibits negative oxidation states at surfaces reduced electrochemically,[37] and several "platinides" have been synthesized in which platinum exhibits oxidation states ranging from −1 to −2. The negative oxidation states exhibited by platinum are unusual for metallic elements, and they are attributed to the relativistic stabilization of the 6s orbitals.[38] Barium platinides include BaPt, Template:Chem, and Template:Chem.[39] Caesium platinide, Template:Chem, a dark-red transparent crystalline compound[40] has been shown to contain PtTemplate:Su anions.[38] The "platinum Grignard" Pt(MgCl)2·Template:MvarTHF conjecturally contains Pt2− as well.[41]

It is predicted that even the cation Template:Chem in which platinum exists in the +10 oxidation state may be achievable.[42]

Zeise's salt, containing an ethylene ligand, was one of the first organometallic compounds discovered. Template:Chem name is a commercially available olefin complex, which contains easily displaceable cod ligands ("cod" being an abbreviation of 1,5-cyclooctadiene). The cod complex and the halides are convenient starting points to platinum chemistry.[15]

Cisplatin, or Template:Chem name is the first of a series of square planar platinum(II)-containing chemotherapy drugs.[43] Others include carboplatin and oxaliplatin. These compounds are capable of crosslinking DNA, and kill cells by similar pathways to alkylating chemotherapeutic agents.[44] (Side effects of cisplatin include nausea and vomiting, hair loss, tinnitus, hearing loss, and nephrotoxicity.)[45][46]

Organoplatinum compounds such as the above anti-tumor agents, as well as soluble inorganic platinum complexes, are routinely characterized using [[Platinum-195 nuclear magnetic resonance|Template:Chem nuclear magnetic resonance spectroscopy]].

Non-reactivity with animal life

Platinum exposure has shown no adverse effects with animal life as it is one of the least reactive metals.[47]

As platinum is a catalyst in the manufacture of the silicone rubber and gel components of several types of medical implants (breast implants, joint replacement prosthetics, artificial lumbar discs, vascular access ports, etc.), the possibility that platinum could enter the body and cause adverse effects has been studied. The Food and Drug Administration and other institutions have reviewed the issue and found no evidence to suggest toxicity in vivo.[48][49][50]

Platinum salts

Short-term exposure to platinum salts may cause irritation of the eyes, nose, and throat, and long-term exposure may cause both respiratory and skin allergies. The current OSHA standard is 2 micrograms per cubic meter of air averaged over an 8-hour work shift.[51]

History

Early uses

Archaeologists have discovered traces of platinum in the gold used in ancient Egyptian burials. For example, a small box from burial of Shepenupet II was found to be decorated with gold-platinum hieroglyphics.[52] However, the extent of early Egyptians' knowledge of the metal is unclear. It is quite possible they did not recognize there was platinum in their gold.[53][54]

The metal was used by Native Americans near modern-day Esmeraldas, Ecuador to produce artifacts of a white gold-platinum alloy. Archeologists usually associate the tradition of platinum-working in South America with the La Tolita Culture (Template:Circa BCE – 200 CE), but precise dates and location are difficult, as most platinum artifacts from the area were bought secondhand through the antiquities trade rather than obtained by direct archeological excavation.[55] To work the metal, they would combine gold and platinum powders by sintering. The resulting gold–platinum alloy would then be soft enough to shape with tools.[56][57] The platinum used in such objects was not the pure element, but rather a naturally occurring mixture of the platinum group metals, with small amounts of palladium, rhodium, and iridium.[58]

European discovery

The first European reference to platinum appears in 1557 in the writings of the Italian humanist Julius Caesar Scaliger as a description of an unknown noble metal found between Darién and Mexico, "which no fire nor any Spanish artifice has yet been able to liquefy".[59] From their first encounters with platinum, the Spanish generally saw the metal as a kind of impurity in gold, and it was treated as such. It was often simply thrown away, and there was an official decree forbidding the adulteration of gold with platinum impurities.[58]

A left-pointing crescent, tangent on its right to a circle containing at its center a solid circular dot
This alchemical symbol for platinum was made by joining the symbols of silver (moon) and gold (sun).
File:Almirante Antonio de Ulloa.jpg
Antonio de Ulloa is credited in European history with the discovery of platinum.

In 1735, Antonio de Ulloa and Jorge Juan y Santacilia saw Native Americans mining platinum while the Spaniards were travelling through Colombia and Peru for eight years. Ulloa and Juan found mines with the whitish metal nuggets and took them home to Spain. Antonio de Ulloa returned to Spain and established the first mineralogy lab in Spain and was the first to systematically study platinum, which was in 1748. His historical account of the expedition included a description of platinum as being neither separable nor calcinable. Ulloa also anticipated the discovery of platinum mines. After publishing the report in 1748, Ulloa did not continue to investigate the new metal. In 1758, he was sent to superintend mercury mining operations in Huancavelica.[59]

In 1741, Charles Wood,[60] a British metallurgist, found various samples of Colombian platinum in Jamaica, which he sent to William Brownrigg for further investigation.

In 1750, after studying the platinum sent to him by Wood, Brownrigg presented a detailed account of the metal to the Royal Society, stating that he had seen no mention of it in any previous accounts of known minerals.[61] Brownrigg also made note of platinum's extremely high melting point and refractoriness toward borax.Template:Clarify Other chemists across Europe soon began studying platinum, including Andreas Sigismund Marggraf,[62] Torbern Bergman, Jöns Jakob Berzelius, William Lewis, and Pierre Macquer. In 1752, Henrik Scheffer published a detailed scientific description of the metal, which he referred to as "white gold", including an account of how he succeeded in fusing platinum ore with the aid of arsenic. Scheffer described platinum as being less pliable than gold, but with similar resistance to corrosion.[59]

Means of malleability

Karl von Sickingen researched platinum extensively in 1772. He succeeded in making malleable platinum by alloying it with gold, dissolving the alloy in hot aqua regia, precipitating the platinum with ammonium chloride, igniting the ammonium chloroplatinate, and hammering the resulting finely divided platinum to make it cohere. Franz Karl Achard made the first platinum crucible in 1784. He worked with the platinum by fusing it with arsenic, then later volatilizing the arsenic.[59]

Because the other platinum-family members were not discovered yet (platinum was the first), Scheffer and Sickingen made the false assumption that due to its hardness—which is slightly more than for pure iron—platinum would be a relatively non-pliable material, even brittle at times, when in fact its ductility exceeds that of gold and its malleability similar to gold's. Their assumptions could not be avoided because the platinum they experimented with was highly contaminated with minute amounts of platinum-family elements such as osmium and iridium, amongst others, which embrittled the platinum alloy. Alloying this impure platinum residue called "plyoxen"Script error: No such module "Unsubst". with gold as the only solution at the time to obtain a pliable compound. Presently, very pure platinum is readily available, and extremely long wires can easily be drawn from pure platinum due to its crystalline structure, which is similar to that of many soft metals.[63]

"Platinum age" in Spain

In 1786, Charles III of Spain provided a library and laboratory to Pierre-François Chabaneau to aid in his research of platinum. Chabaneau succeeded in removing various impurities from the ore, including gold, mercury, lead, copper, and iron. This led him to believe he was working with a single metal, but in truth the ore still contained the yet-undiscovered platinum-group metals. This led to inconsistent results in his experiments. At times, the platinum seemed malleable, but when it was alloyed with iridium, it would be much more brittle. Sometimes the metal was entirely incombustible, but when alloyed with osmium, it would volatilize. After several months, Chabaneau succeeded in producing 23 kilograms of pure, malleable platinum by hammering and compressing the sponge form while white-hot. Chabeneau realized the infusibility of platinum would lend value to objects made of it and so started a business with Joaquín Cabezas producing platinum ingots and utensils. This started what is known as the "platinum age" in Spain.[59]

Production

Platinum, along with the rest of the platinum-group metals, is obtained commercially as a by-product from nickel and copper mining and processing. During electrorefining of copper, noble metals such as silver, gold and the platinum-group metals as well as selenium and tellurium settle to the bottom of the cell as "anode mud", which forms the starting point for the extraction of the platinum-group metals.[64]

If pure platinum is found in placer deposits or other ores, it is isolated from them by various methods of subtracting impurities. Because platinum is significantly denser than many of its impurities, the lighter impurities can be removed by simply floating them away in a liquid. Platinum is paramagnetic, whereas nickel and iron are both ferromagnetic. These two impurities are thus removed by running an electromagnet over the mixture. Because platinum has a higher melting point than most other substances, many impurities can be burned or melted away without melting the platinum. Finally, platinum is resistant to hydrochloric and sulfuric acids, whereas other substances are readily attacked by them. Metal impurities can be removed by stirring the mixture in either of the two acids and recovering the remaining platinum.[65]

One suitable method for purification for the raw platinum, which contains platinum, gold, and the other platinum-group metals, is to process it with aqua regia, in which palladium, gold and platinum are dissolved, whereas osmium, iridium, ruthenium and rhodium stay unreacted. The gold is precipitated by the addition of iron(II) chloride and after filtering off the gold, the platinum is precipitated as ammonium chloroplatinate by the addition of ammonium chloride. Ammonium chloroplatinate can be converted to platinum by heating.[66] Unprecipitated hexachloroplatinate(IV) may be reduced with elemental zinc, and a similar method is suitable for small scale recovery of platinum from laboratory residues.[67] Mining and refining platinum has environmental impacts.[68]Template:SrnTemplate:Table alignment

File:Platinum Mining.jpg
An aerial photograph of a platinum mine in South Africa.
File:Platinum world production.svg
Time trend of platinum production[69]
Platinum production by country[70][71]
Country Production (kg) Year
Template:NoflagWorld 170,000 2024
Template:Country data South Africa 120,000 2024
Template:Country data Zimbabwe 19,000 2024
Template:Country data Russia 18,000 2024
Template:Country data Canada 5,200 2024
Template:Country data China 2,800 2022
Template:Country data United States 2,000 2024
Template:Country data Finland 1,243 2022
Template:Country data Colombia 501 2022
Template:Country data Australia 100 2022
Template:Country data Ethiopia 30 2022
Template:Country data Serbia 10 2022
Template:Country data Poland 5 2022

Applications

File:Aufgeschnittener Metall Katalysator für ein Auto.jpg
Cutaway view of a metal-core catalytic converter

Of the 218 tonnes of platinum sold in 2014, 98 tonnes were used for vehicle emissions control devices (45%), 74.7 tonnes for jewelry (34%), 20.0 tonnes for chemical production and petroleum refining (9.2%), and 5.85 tonnes for electrical applications such as hard disk drives (2.7%). The remaining 28.9 tonnes went to various other minor applications, such as medicine and biomedicine, glassmaking equipment, investment, electrodes, anticancer drugs, oxygen sensors, spark plugs and turbine engines.[72]

Catalyst

The most common use of platinum is as a catalyst in chemical reactions, often as platinum black. It has been employed as a catalyst since the early 19th century, when platinum powder was used to catalyze the ignition of hydrogen. In an automobile catalytic converter, it completes the combustion of low concentrations of unburned hydrocarbons from the exhaust into carbon dioxide and water vapor. Platinum is also used in the petroleum industry as a catalyst in a number of separate processes, but especially in catalytic reforming of straight-run naphthas into higher-octane gasoline that becomes rich in aromatic compounds. Template:Chem2, also known as Adams' catalyst, is used as a hydrogenation catalyst, specifically for vegetable oils.[32] Platinum also strongly catalyzes the decomposition of hydrogen peroxide into water and oxygen[73] and it is used in fuel cells[74] as a catalyst for the reduction of oxygen.[75]

Green energy transition

As a fuel cell catalyst, platinum enables hydrogen and oxygen reactions to take place at an optimum rate. It is used in platinum-based proton exchange membrane (PEM) technologies required in green hydrogen production as well as fuel cell electric vehicle adoption (FCEV).[76][77]

Standard

File:Platinum-Iridium meter bar.jpg
Prototype International Meter bar made by Johnson Matthey

From 1889 to 1960, the meter was defined as the length of a platinum-iridium (90:10) alloy bar, known as the international prototype meter. The previous bar was made of platinum in 1799. Until May 2019, the kilogram was defined as the mass of the international prototype of the kilogram, a cylinder of the same platinum-iridium alloy made in 1879.[78]

The Standard Platinum Resistance Thermometer (SPRT) is one of the four types of thermometers used to define the International Temperature Scale of 1990 (ITS-90), the international calibration standard for temperature measurements. The resistance wire in the thermometer is made of pure platinum (NIST manufactured the wires from platinum bar stock with a chemical purity of 99.999% by weight).[79][80] In addition to laboratory uses, Platinum Resistance Thermometry (PRT) also has many industrial applications, industrial standards include ASTM E1137 and IEC 60751.

The standard hydrogen electrode also uses a platinized platinum electrode due to its corrosion resistance, and other attributes.[81]

As an investment

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Platinum is a precious metal commodity; its bullion has the ISO currency code of XPT. Coins, bars, and ingots are traded or collected. Platinum finds use in jewelry, commonly sold as .999 or .9995 fine. It is used for this purpose for its prestige and inherent bullion value.[82][83]

In watchmaking, Rolex,[84] Vacheron Constantin,[85] Patek Philippe,[86] Breitling,[87] and other master watchmakers use platinum in select watches. Watchmakers appreciate the unique properties of platinum, as it is more durable than gold, but similar to gold as it does not tarnish.[88]

During periods of sustained economic stability and growth, the price of platinum can exceed that of the price of gold.[89] As an investment, platinum is similar to gold in being a relatively low risk investment, or "safe-haven", in times of economic crisis.[90] When the price of gold has exceeded that of platinum, many buyers in major markets, including the famous Dubai "gold souk" have turned to buying platinum instead for investment and for jewelry.[91]

In the 18th century King Louis XV of France said of platinum that it is "the only metal fit for a king", owing to platinum's scarcity, traits, and intrinsic value.[92]

As of 2024, the American multinational warehouse club chain, Costco, sells platinum bars on its website.[93]

Other uses

In the laboratory, platinum wire is used for electrodes; platinum pans and supports are used in thermogravimetric analysis because of the stringent requirements of chemical inertness upon heating to high temperatures (~1000 °C). Platinum is used as an alloying agent for various metal products, including fine wires, noncorrosive laboratory containers, medical instruments, dental prostheses, electrical contacts, and thermocouples. Platinum-cobalt, an alloy of roughly three parts platinum and one part cobalt, is used to make relatively strong permanent magnets.[32] Platinum-based anodes are used in ships, pipelines, and steel piers.[14] Platinum drugs are used to treat a wide variety of cancers, including testicular and ovarian carcinomas, melanoma, small-cell and non-small-cell lung cancer, myelomas and lymphomas.[95]

Symbol of prestige in marketing

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Platinum's rarity as a metal has caused advertisers to associate it with exclusivity and wealth. "Platinum" debit and credit cards have greater privileges than "gold" cards.[96] "Platinum awards" are frequently the highest, or near highest possible, often ranking above "gold", "silver" and "bronze". In the United States, a musical album that has sold more than 1 million copies will be credited as "platinum".[97] Some products, such as blenders and vehicles, with a silvery-white color are identified as "platinum". The frame of the Crown of Queen Elizabeth The Queen Mother, manufactured for her coronation as Consort of King George VI, is made of platinum. It was the first British crown to be made of this particular metal.[98]

See also

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References

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Further reading

External links

Template:Sister project Template:Sister project

Template:Periodic table (navbox) Template:Jewellery Template:Platinum compounds Template:Authority control

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