Spintronics: Difference between revisions

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{{Short description|Solid-state electronics based on electron spin}}
{{Short description|Solid-state electronics based on electron spin}}
{{Use American English|date=January 2019}}{{Use dmy dates|date=March 2025}}
{{Use American English|date=January 2019}}
{{Use dmy dates|date=March 2025}}
'''Spintronics''' (a [[portmanteau]] meaning '''spin transport electronics'''<ref>{{Cite journal | last1 = Wolf | first1 = S. A. | last2 = Chtchelkanova | first2 = A. Y. | last3 = Treger | first3 = D. M. | title = Spintronics—A retrospective and perspective | doi = 10.1147/rd.501.0101 | journal = IBM Journal of Research and Development | volume = 50 | pages = 101–110 | year = 2006 }}</ref><ref>{{Cite web|url=http://video.google.com/videoplay?docid=2927943907685656536&q=LevyResearch&ei=dxd1SNCtOqj2rAKxzf1p|title=Physics Profile: "Stu Wolf: True D! Hollywood Story"|access-date=11 July 2008|archive-date=18 April 2011|archive-url=https://web.archive.org/web/20110418015231/http://video.google.com/videoplay?docid=2927943907685656536|url-status=dead}}</ref><ref>[https://www.science.org/doi/abs/10.1126/science.1065389 Spintronics: A Spin-Based Electronics Vision for the Future]. Sciencemag.org (16 November 2001). Retrieved on 21 October 2013.</ref>), also known as '''spin electronics''', is the study of the intrinsic [[Spin (physics)|spin]] of the [[electron]] and its associated [[magnetic moment]], in addition to its fundamental [[electron charge|electronic charge]], in [[Solid-state electronics|solid-state devices]].<ref name="Bhatti et al.">{{cite journal |first1=S. |last1=Bhatti |display-authors=etal |title=Spintronics based random access memory: a review |journal=Materials Today |year=2017 |volume=20 |issue=9 |pages=530–548 |doi=10.1016/j.mattod.2017.07.007|doi-access=free |hdl=10356/146755 |hdl-access=free }}</ref> The field of spintronics concerns spin-charge coupling in metallic systems; the analogous effects in insulators fall into the field of [[multiferroics]].
'''Spintronics''' (a [[portmanteau]] meaning '''spin transport electronics'''<ref>{{Cite journal | last1 = Wolf | first1 = S. A. | last2 = Chtchelkanova | first2 = A. Y. | last3 = Treger | first3 = D. M. | title = Spintronics—A retrospective and perspective | doi = 10.1147/rd.501.0101 | journal = IBM Journal of Research and Development | volume = 50 | pages = 101–110 | year = 2006 }}</ref><ref>{{Cite web|url=http://video.google.com/videoplay?docid=2927943907685656536&q=LevyResearch&ei=dxd1SNCtOqj2rAKxzf1p|title=Physics Profile: "Stu Wolf: True D! Hollywood Story"|access-date=11 July 2008|archive-date=18 April 2011|archive-url=https://web.archive.org/web/20110418015231/http://video.google.com/videoplay?docid=2927943907685656536|url-status=dead}}</ref><ref>[https://www.science.org/doi/abs/10.1126/science.1065389 Spintronics: A Spin-Based Electronics Vision for the Future]. Sciencemag.org (16 November 2001). Retrieved on 21 October 2013.</ref>), also known as '''spin electronics''', is the study of the intrinsic [[Spin (physics)|spin]] of the [[electron]] and its associated [[magnetic moment]], in addition to its fundamental [[electron charge|electronic charge]], in [[Solid-state electronics|solid-state devices]].<ref name="Bhatti et al.">{{cite journal |first1=S. |last1=Bhatti |display-authors=etal |title=Spintronics based random access memory: a review |journal=Materials Today |year=2017 |volume=20 |issue=9 |pages=530–548 |doi=10.1016/j.mattod.2017.07.007|doi-access=free |hdl=10356/146755 |hdl-access=free }}</ref> The field of spintronics concerns spin-charge coupling in metallic systems; the analogous effects in insulators fall into the field of [[multiferroics]].


Spintronics fundamentally differs from traditional electronics in that, in addition to charge state, electron spins are used as a further degree of freedom, with implications in the efficiency of data storage and transfer. Spintronic systems are most often realised in [[Magnetic semiconductor|dilute magnetic semiconductors (DMS)]] and [[Heusler alloy]]s and are of particular interest in the field of [[quantum computing]] and [[neuromorphic computing]], upon which leads to integrated research requirements around [[Hyperdimensional computing|Hyperdimensional Computation]].
Spintronics fundamentally differs from traditional electronics in that, in addition to charge state, electron spins are used as a further degree of freedom, with implications in the efficiency of data storage and transfer. Spintronic systems are most often realised in [[Magnetic semiconductor|dilute magnetic semiconductors (DMS)]] and [[Heusler alloy]]s and are of particular interest in the field of [[quantum computing]] and [[neuromorphic computing]], which leads to research requirements around [[Hyperdimensional computing|hyperdimensional computation]].


==History==
==History==
Spintronics emerged from discoveries in the 1980s concerning spin-dependent electron transport phenomena in solid-state devices. This includes the observation of [[Spin polarization|spin-polarized]] electron injection from a ferromagnetic metal to a normal metal by Johnson and Silsbee (1985)<ref>{{Cite journal | last1 = Johnson | first1 = M. | last2 = Silsbee | first2 = R. H. | doi = 10.1103/PhysRevLett.55.1790 | title = Interfacial charge-spin coupling: Injection and detection of spin magnetization in metals | journal = Physical Review Letters | volume = 55 | issue = 17 | pages = 1790–1793 | year = 1985 | pmid =  10031924|bibcode = 1985PhRvL..55.1790J }}</ref> and the discovery of [[giant magnetoresistance]] independently by [[Albert Fert]] et al.<ref>{{Cite journal | last1 = Baibich | first1 = M. N. | last2 = Broto | first2 = J. M. | last3 = Fert | first3 = A. | last4 = Nguyen Van Dau | first4 = F. N. | last5 = Petroff | first5 = F. | last6 = Etienne | first6 = P. | last7 = Creuzet | first7 = G. | last8 = Friederich | first8 = A. | last9 = Chazelas | first9 = J. | doi = 10.1103/PhysRevLett.61.2472 | title = Giant Magnetoresistance of (001)Fe/(001)Cr Magnetic Superlattices | journal = Physical Review Letters | volume = 61 | issue = 21 | pages = 2472–2475 | year = 1988 | pmid =  10039127|bibcode = 1988PhRvL..61.2472B | url = http://www.lume.ufrgs.br/bitstream/10183/99075/1/000014840.pdf | doi-access = free }}</ref> and [[Peter Grünberg]] et al. (1988).<ref>{{Cite journal | last1 = Binasch | first1 = G. | last2 = Grünberg | first2 = P. | last3 = Saurenbach | first3 = F. | last4 = Zinn | first4 = W. | title = Enhanced magnetoresistance in layered magnetic structures with antiferromagnetic interlayer exchange | doi = 10.1103/PhysRevB.39.4828 | journal = Physical Review B | volume = 39 | issue = 7 | pages = 4828–4830 | year = 1989 | pmid =  9948867|bibcode = 1989PhRvB..39.4828B | doi-access = free }}</ref> The origin of spintronics can be traced to the ferromagnet/superconductor tunneling experiments pioneered by Meservey and Tedrow and initial experiments on magnetic tunnel junctions by Julliere in the 1970s.<ref>{{Cite journal | last1 = Julliere | first1 = M. | title = Tunneling between ferromagnetic films | doi = 10.1016/0375-9601(75)90174-7 | journal = Physics Letters A | volume = 54 | issue = 3 | pages = 225–226| year = 1975 |bibcode = 1975PhLA...54..225J }}</ref> The use of semiconductors for spintronics began with the theoretical proposal of a spin field-effect-transistor by [[Supriyo Datta|Datta]] and Das in 1990<ref>{{cite journal| doi =  10.1063/1.102730| author =  Datta, S.| author2 =  Das, B.| name-list-style =  amp |title = Electronic analog of the electrooptic modulator|journal = Applied Physics Letters| volume = 56| pages = 665–667|date = 1990|bibcode = 1990ApPhL..56..665D| issue =  7 }}</ref> and of the [[electric dipole spin resonance]] by [[Emmanuel Rashba|Rashba]] in 1960.<ref>E. I. Rashba, Cyclotron and combined resonances in a perpendicular field, Sov. Phys. Solid State  '''2''', 1109 -1122 (1960)</ref>
Spintronics emerged from discoveries in the 1980s concerning spin-dependent electron transport phenomena in solid-state devices. This includes the observation of [[Spin polarization|spin-polarized]] electron injection from a ferromagnetic metal to a normal metal by Johnson and Silsbee (1985)<ref>{{Cite journal | last1 = Johnson | first1 = M. | last2 = Silsbee | first2 = R. H. | doi = 10.1103/PhysRevLett.55.1790 | title = Interfacial charge-spin coupling: Injection and detection of spin magnetization in metals | journal = Physical Review Letters | volume = 55 | issue = 17 | pages = 1790–1793 | year = 1985 | pmid =  10031924|bibcode = 1985PhRvL..55.1790J }}</ref> and the discovery of [[giant magnetoresistance]] independently by [[Albert Fert]] et al.<ref>{{Cite journal | last1 = Baibich | first1 = M. N. | last2 = Broto | first2 = J. M. | last3 = Fert | first3 = A. | last4 = Nguyen Van Dau | first4 = F. N. | last5 = Petroff | first5 = F. | last6 = Etienne | first6 = P. | last7 = Creuzet | first7 = G. | last8 = Friederich | first8 = A. | last9 = Chazelas | first9 = J. | doi = 10.1103/PhysRevLett.61.2472 | title = Giant Magnetoresistance of (001)Fe/(001)Cr Magnetic Superlattices | journal = Physical Review Letters | volume = 61 | issue = 21 | pages = 2472–2475 | year = 1988 | pmid =  10039127|bibcode = 1988PhRvL..61.2472B | url = http://www.lume.ufrgs.br/bitstream/10183/99075/1/000014840.pdf | doi-access = free }}</ref> and [[Peter Grünberg]] et al. (1988).<ref>{{Cite journal | last1 = Binasch | first1 = G. | last2 = Grünberg | first2 = P. | last3 = Saurenbach | first3 = F. | last4 = Zinn | first4 = W. | title = Enhanced magnetoresistance in layered magnetic structures with antiferromagnetic interlayer exchange | doi = 10.1103/PhysRevB.39.4828 | journal = Physical Review B | volume = 39 | issue = 7 | pages = 4828–4830 | year = 1989 | pmid =  9948867|bibcode = 1989PhRvB..39.4828B | doi-access = free }}</ref> The origin of spintronics can be traced to the ferromagnet/superconductor tunneling experiments pioneered by Meservey and Tedrow and initial experiments on magnetic tunnel junctions by Julliere in the 1970s.<ref>{{Cite journal | last1 = Julliere | first1 = M. | title = Tunneling between ferromagnetic films | doi = 10.1016/0375-9601(75)90174-7 | journal = Physics Letters A | volume = 54 | issue = 3 | pages = 225–226| year = 1975 |bibcode = 1975PhLA...54..225J }}</ref> The use of semiconductors for spintronics began with the theoretical proposal of a spin field-effect-transistor by [[Supriyo Datta|Datta]] and Das in 1990<ref>{{cite journal| doi =  10.1063/1.102730| author =  Datta, S.| author2 =  Das, B.| name-list-style =  amp |title = Electronic analog of the electrooptic modulator|journal = Applied Physics Letters| volume = 56| pages = 665–667|date = 1990|bibcode = 1990ApPhL..56..665D| issue =  7 }}</ref> and of the [[electric dipole spin resonance]] by [[Emmanuel Rashba|Rashba]] in 1960.<ref>E. I. Rashba, Cyclotron and combined resonances in a perpendicular field, Sov. Phys. Solid State  '''2''', 1109 -1122 (1960)</ref>
In 2012, persistent spin helices of synchronized electrons were made to persist for more than a nanosecond, a 30-fold increase over earlier efforts, and longer than the duration of a modern processor clock cycle.<ref>{{cite journal |author=Walser, M. |author2=Reichl, C. |author3=Wegscheider, W. |author4=Salis, G. |name-list-style=amp |date=2012 |title=Direct mapping of the formation of a persistent spin helix |journal=Nature Physics |volume=8 |issue=10 |pages=757 |arxiv=1209.4857 |bibcode=2012NatPh...8..757W |doi=10.1038/nphys2383 |s2cid=119209785}}</ref>
In 2025, at {{Convert|60|K}} crystalline NiI<sub>2</sub> was reported to exhibit p-wave magnetism, in which the spins of nickel atoms became arranged in a spiral pattern in two orientations. The orientations can be switched via a small electrical current. Applied in digital devices, this spintronics behavior requires far less current than the conventional charge-based electronics that powers devices such as computers and phones.<ref>{{Cite web |last=Ghoshal |first=Abhimanyu |date=2025-06-14 |title=Newly observed magnetic state could unlock ultrafast memory chips |url=https://newatlas.com/physics/new-magnetic-state-ultrafast-memory/ |access-date=2025-06-20 |website=New Atlas |language=en-US}}</ref>


== Theory ==
== Theory ==
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* Spin-wave logic devices carry information in the phase. Interference and spin-wave scattering can perform logic operations.
* Spin-wave logic devices carry information in the phase. Interference and spin-wave scattering can perform logic operations.


==Spintronic-logic devices==
==Device types==
 
=== Spintronic-logic ===
Non-volatile spin-logic devices to enable scaling are being extensively studied.<ref>[[International Technology Roadmap for Semiconductors]]</ref> Spin-transfer, torque-based logic devices that use spins and magnets for information processing have been proposed.<ref>{{Cite journal | last1 = Behin-Aein | first1 = B. | last2 = Datta | first2 = D. | last3 = Salahuddin | first3 = S. | last4 = Datta | first4 = S. | title = Proposal for an all-spin logic device with built-in memory | doi = 10.1038/nnano.2010.31 | journal = Nature Nanotechnology | volume = 5 | issue = 4 | pages = 266–270 | year = 2010 | pmid =  20190748|bibcode = 2010NatNa...5..266B }}</ref><ref>Manipatruni, Sasikanth; Nikonov, Dmitri E. and Young, Ian A. (2011) [https://arxiv.org/abs/1112.2746 [1112.2746&#93; Circuit Theory for SPICE of Spintronic Integrated Circuits]. Arxiv.org. Retrieved on 21 October 2013.</ref> These devices are part of the [[International Technology Roadmap for Semiconductors|ITRS]] exploratory road map. Logic-in memory applications are already in the development stage.<ref>[https://archive.today/20120420160205/http://crocus-technology.com/pr-12-08-11.html Crocus Partners With Starchip To Develop System-On-Chip Solutions Based on Magnetic-Logic-Unit (MLU) Technology]. crocus-technology.com. 8 December 2011</ref><ref>[http://www.nec.com/en/press/201206/global_20120611_02.html Groundbreaking New Technology for Improving the Reliability of Spintronics Logic Integrated Circuits]. Nec.com. 11 June 2012.</ref> A 2017 review article can be found in ''Materials Today''.<ref name="Bhatti et al." />
Non-volatile spin-logic devices to enable scaling are being extensively studied.<ref>[[International Technology Roadmap for Semiconductors]]</ref> Spin-transfer, torque-based logic devices that use spins and magnets for information processing have been proposed.<ref>{{Cite journal | last1 = Behin-Aein | first1 = B. | last2 = Datta | first2 = D. | last3 = Salahuddin | first3 = S. | last4 = Datta | first4 = S. | title = Proposal for an all-spin logic device with built-in memory | doi = 10.1038/nnano.2010.31 | journal = Nature Nanotechnology | volume = 5 | issue = 4 | pages = 266–270 | year = 2010 | pmid =  20190748|bibcode = 2010NatNa...5..266B }}</ref><ref>Manipatruni, Sasikanth; Nikonov, Dmitri E. and Young, Ian A. (2011) [https://arxiv.org/abs/1112.2746 [1112.2746&#93; Circuit Theory for SPICE of Spintronic Integrated Circuits]. Arxiv.org. Retrieved on 21 October 2013.</ref> These devices are part of the [[International Technology Roadmap for Semiconductors|ITRS]] exploratory road map. Logic-in memory applications are already in the development stage.<ref>[https://archive.today/20120420160205/http://crocus-technology.com/pr-12-08-11.html Crocus Partners With Starchip To Develop System-On-Chip Solutions Based on Magnetic-Logic-Unit (MLU) Technology]. crocus-technology.com. 8 December 2011</ref><ref>[http://www.nec.com/en/press/201206/global_20120611_02.html Groundbreaking New Technology for Improving the Reliability of Spintronics Logic Integrated Circuits]. Nec.com. 11 June 2012.</ref> A 2017 review article can be found in ''Materials Today''.<ref name="Bhatti et al." />


A generalized circuit theory for spintronic integrated circuits has been proposed<ref>S. Manipatruni, D. E. Nikonov and I. A. Young, "Modeling and Design of Spintronic Integrated Circuits," in IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 59, no. 12, pp. 2801–2814, Dec. 2012, doi: 10.1109/TCSI.2012.2206465.  https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6359950&isnumber=6359940</ref> so that the physics of spin transport can be utilized by SPICE developers and subsequently by circuit and system designers for the exploration of spintronics for "beyond CMOS computing".
A generalized circuit theory for spintronic integrated circuits has been proposed<ref>S. Manipatruni, D. E. Nikonov and I. A. Young, "Modeling and Design of Spintronic Integrated Circuits," in IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 59, no. 12, pp. 2801–2814, Dec. 2012, doi: 10.1109/TCSI.2012.2206465.  https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6359950&isnumber=6359940</ref> so that the physics of spin transport can be utilized by SPICE developers and subsequently by circuit and system designers for the exploration of spintronics for "beyond CMOS computing".


===Applications===
=== Semiconductor ===
[[Disk read-and-write head|Read heads]] of magnetic [[hard drive]]s are based on the GMR or TMR effect.
 
Motorola developed a first-generation 256&nbsp;[[kilobit|kb]] [[magnetoresistive random-access memory]] (MRAM) based on a single magnetic tunnel junction and a single transistor that has a read/write cycle of under 50 nanoseconds.<ref>[http://www.sigmaaldrich.com/materials-science/alternative-energy-materials/magnetic-materials/tutorial/spintronics.html Spintronics]. Sigma-Aldrich. Retrieved on 21 October 2013.</ref> [[Everspin]] has since developed a 4&nbsp;[[Megabit|Mb]] version.<ref>[http://www.everspin.com/technology.php Everspin] {{webarchive |url=https://web.archive.org/web/20120630001137/http://www.everspin.com/technology.php |date=30 June 2012 }}. Everspin. Retrieved on 21 October 2013.</ref> Two second-generation MRAM techniques are in development: [[thermal-assisted switching]] (TAS)<ref>Hoberman, Barry. [http://www.crocustechnology.com/pdf/BH%20GSA%20Article.pdf The Emergence of Practical MRAM] {{webarchive|url=https://web.archive.org/web/20131021115241/http://www.crocustechnology.com/pdf/BH%20GSA%20Article.pdf |date=21 October 2013 }}. crocustechnology.com</ref> and [[spin-transfer torque]] (STT).<ref>LaPedus, Mark (18 June 2009) [http://www.eetimes.com/document.asp?doc_id=1171188 Tower invests in Crocus, tips MRAM foundry deal]. eetimes.com</ref>
 
Another design, [[racetrack memory]], a novel memory architecture proposed by [[Stuart Parkin|Dr. Stuart S. P. Parkin]], encodes information in the direction of magnetization between domain walls of a ferromagnetic wire.
 
In 2012, persistent spin helices of synchronized electrons were made to persist for more than a nanosecond, a 30-fold increase over earlier efforts, and longer than the duration of a modern processor clock cycle.<ref>{{cite journal|author=Walser, M.|author2=Reichl, C.|author3=Wegscheider, W.|author4=Salis, G.|name-list-style=amp |title=Direct mapping of the formation of a persistent spin helix|journal=Nature Physics|doi=10.1038/nphys2383|bibcode = 2012NatPh...8..757W|date=2012|volume=8|issue=10|pages=757 |arxiv=1209.4857|s2cid=119209785}}</ref>
 
==Semiconductor-based spintronic devices==
 
Doped semiconductor materials display dilute ferromagnetism. In recent years, dilute magnetic oxides (DMOs) including [[ZnO-based diluted magnetic semiconductors|ZnO based DMOs]] and [[Anatase|TiO<sub>2</sub>]]-based DMOs have been the subject of numerous experimental and computational investigations.<ref>{{cite journal| last1=Assadi| first1=M.H.N| last2=Hanaor| first2=D.A.H| title= Theoretical study on copper's energetics and magnetism in TiO<sub>2</sub> polymorphs| journal= Journal of Applied Physics| date=2013| volume=113| issue=23| pages= 233913–233913–5| doi=10.1063/1.4811539|arxiv = 1304.1854 |bibcode = 2013JAP...113w3913A | s2cid=94599250}}</ref><ref>{{cite journal| last1=Ogale| first1=S.B| title= Dilute doping, defects, and ferromagnetism in metal oxide systems| journal= Advanced Materials| date=2010| volume=22| issue=29| pages= 3125–3155| doi=10.1002/adma.200903891| pmid=20535732| bibcode=2010AdM....22.3125O| s2cid=25307693}}</ref> Non-oxide ferromagnetic semiconductor sources (like manganese-doped gallium arsenide {{chem2|[[(Ga,Mn)As]]}}),<ref>{{Cite journal | last1 = Jonker | first1 = B. | last2 = Park | first2 = Y. | last3 = Bennett | first3 = B. | last4 = Cheong | first4 = H. | last5 = Kioseoglou | first5 = G. | last6 = Petrou | first6 = A. | doi = 10.1103/PhysRevB.62.8180 | title = Robust electrical spin injection into a semiconductor heterostructure | journal = Physical Review B | volume = 62 | issue = 12 | pages = 8180 | year = 2000 |bibcode = 2000PhRvB..62.8180J }}</ref> increase the interface resistance with a tunnel barrier,<ref>{{Cite journal | last1 = Hanbicki | first1 = A. T. | last2 = Jonker | first2 = B. T. | last3 = Itskos | first3 = G. | last4 = Kioseoglou | first4 = G. | last5 = Petrou | first5 = A. | title = Efficient electrical spin injection from a magnetic metal/tunnel barrier contact into a semiconductor | doi = 10.1063/1.1449530 | journal = Applied Physics Letters | volume = 80 | issue = 7 | pages = 1240 | year = 2002 |arxiv = cond-mat/0110059 |bibcode = 2002ApPhL..80.1240H | s2cid = 119098659 }}</ref> or using hot-electron injection.<ref>{{Cite journal | last1 = Jiang | first1 = X. | last2 = Wang | first2 = R. | last3 = Van Dijken | first3 = S. | last4 = Shelby | first4 = R. | last5 = MacFarlane | first5 = R. | last6 = Solomon | first6 = G. | last7 = Harris | first7 = J. | last8 = Parkin | first8 = S. | doi = 10.1103/PhysRevLett.90.256603 | title = Optical Detection of Hot-Electron Spin Injection into GaAs from a Magnetic Tunnel Transistor Source | journal = Physical Review Letters | volume = 90 | issue = 25 | year = 2003 | pmid =  12857153|bibcode = 2003PhRvL..90y6603J | page=256603}}</ref>
Doped semiconductor materials display dilute ferromagnetism. In recent years, dilute magnetic oxides (DMOs) including [[ZnO-based diluted magnetic semiconductors|ZnO based DMOs]] and [[Anatase|TiO<sub>2</sub>]]-based DMOs have been the subject of numerous experimental and computational investigations.<ref>{{cite journal| last1=Assadi| first1=M.H.N| last2=Hanaor| first2=D.A.H| title= Theoretical study on copper's energetics and magnetism in TiO<sub>2</sub> polymorphs| journal= Journal of Applied Physics| date=2013| volume=113| issue=23| pages= 233913–233913–5| doi=10.1063/1.4811539|arxiv = 1304.1854 |bibcode = 2013JAP...113w3913A | s2cid=94599250}}</ref><ref>{{cite journal| last1=Ogale| first1=S.B| title= Dilute doping, defects, and ferromagnetism in metal oxide systems| journal= Advanced Materials| date=2010| volume=22| issue=29| pages= 3125–3155| doi=10.1002/adma.200903891| pmid=20535732| bibcode=2010AdM....22.3125O| s2cid=25307693}}</ref> Non-oxide ferromagnetic semiconductor sources (like manganese-doped gallium arsenide {{chem2|[[(Ga,Mn)As]]}}),<ref>{{Cite journal | last1 = Jonker | first1 = B. | last2 = Park | first2 = Y. | last3 = Bennett | first3 = B. | last4 = Cheong | first4 = H. | last5 = Kioseoglou | first5 = G. | last6 = Petrou | first6 = A. | doi = 10.1103/PhysRevB.62.8180 | title = Robust electrical spin injection into a semiconductor heterostructure | journal = Physical Review B | volume = 62 | issue = 12 | pages = 8180 | year = 2000 |bibcode = 2000PhRvB..62.8180J }}</ref> increase the interface resistance with a tunnel barrier,<ref>{{Cite journal | last1 = Hanbicki | first1 = A. T. | last2 = Jonker | first2 = B. T. | last3 = Itskos | first3 = G. | last4 = Kioseoglou | first4 = G. | last5 = Petrou | first5 = A. | title = Efficient electrical spin injection from a magnetic metal/tunnel barrier contact into a semiconductor | doi = 10.1063/1.1449530 | journal = Applied Physics Letters | volume = 80 | issue = 7 | pages = 1240 | year = 2002 |arxiv = cond-mat/0110059 |bibcode = 2002ApPhL..80.1240H | s2cid = 119098659 }}</ref> or using hot-electron injection.<ref>{{Cite journal | last1 = Jiang | first1 = X. | last2 = Wang | first2 = R. | last3 = Van Dijken | first3 = S. | last4 = Shelby | first4 = R. | last5 = MacFarlane | first5 = R. | last6 = Solomon | first6 = G. | last7 = Harris | first7 = J. | last8 = Parkin | first8 = S. | doi = 10.1103/PhysRevLett.90.256603 | title = Optical Detection of Hot-Electron Spin Injection into GaAs from a Magnetic Tunnel Transistor Source | journal = Physical Review Letters | volume = 90 | issue = 25 | year = 2003 | pmid =  12857153|bibcode = 2003PhRvL..90y6603J | page=256603}}</ref>


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Because external magnetic fields (and stray fields from magnetic contacts) can cause large [[Hall effect]]s and [[magnetoresistance]] in semiconductors (which mimic [[spin-valve]] effects), the only conclusive evidence of spin transport in semiconductors is demonstration of spin [[precession]] and [[dephasing]] in a magnetic field non-collinear to the injected spin orientation, called the [[Hanle effect]].
Because external magnetic fields (and stray fields from magnetic contacts) can cause large [[Hall effect]]s and [[magnetoresistance]] in semiconductors (which mimic [[spin-valve]] effects), the only conclusive evidence of spin transport in semiconductors is demonstration of spin [[precession]] and [[dephasing]] in a magnetic field non-collinear to the injected spin orientation, called the [[Hanle effect]].


===Applications===
=== Storage media ===
Applications using spin-polarized electrical injection have shown threshold current reduction and controllable circularly polarized coherent light output.<ref>{{Cite journal | last1 = Holub | first1 = M. | last2 = Shin | first2 = J. | last3 = Saha | first3 = D. | last4 = Bhattacharya | first4 = P. | title = Electrical Spin Injection and Threshold Reduction in a Semiconductor Laser | doi = 10.1103/PhysRevLett.98.146603 | journal = Physical Review Letters | volume = 98 | issue = 14 | year = 2007 | pmid = 17501298|bibcode = 2007PhRvL..98n6603H | page=146603}}</ref> Examples include semiconductor lasers. Future applications may include a spin-based [[transistor]] having advantages over [[MOSFET]] devices such as steeper sub-threshold slope.
[[Antiferromagnetism|Antiferromagnetic]] storage media have been studied as an alternative to [[ferromagnetism]],<ref>{{cite web |author=Jungwirth, T. |type=announcement of a physics colloquium at a Bavarian university |date=28 April 2014 |title=Relativistic Approaches to Spintronics with Antiferromagnets |url=http://www.physik.uni-regensburg.de/aktuell/KollSS14/Kolloquium-Jungwirth.pdf |access-date=29 April 2014 |archive-date=29 April 2014 |archive-url=https://web.archive.org/web/20140429190040/http://www.physik.uni-regensburg.de/aktuell/KollSS14/Kolloquium-Jungwirth.pdf |url-status=dead }}</ref> especially since with antiferromagnetic material the bits can be stored as well as with ferromagnetic material. Instead of the usual definition 0&nbsp;↔ 'magnetisation upwards', 1&nbsp;↔ 'magnetisation downwards', the states can be, e.g., 0&nbsp;↔ 'vertically alternating spin configuration' and 1&nbsp;↔ 'horizontally-alternating spin configuration'.<ref>This corresponds mathematically to the transition from the rotation group SO(3) to its relativistic covering, the "double group" SU(2)</ref>).
 
The main advantages of antiferromagnetic material are:
 
* insensitivity to data-damaging perturbations by stray fields due to zero net external magnetization;<ref name=netzero>{{cite journal |last1=Jungwirth |first1=T. |last2=Marti |first2=X. |last3=Wadley |first3=P. |last4=Wunderlich |first4=J. |title=Antiferromagnetic spintronics |journal=Nature Nanotechnology |publisher=Springer Nature |volume=11 |issue=3 |year=2016 |issn=1748-3387 |doi=10.1038/nnano.2016.18 |pmid=26936817 |pages=231–241 |arxiv=1509.05296|bibcode=2016NatNa..11..231J |s2cid=5058124 }}</ref>
* no effect on near particles, implying that antiferromagnetic device elements would not magnetically disturb its neighboring elements;<ref name=netzero/>
* far shorter switching times (antiferromagnetic resonance frequency is in the THz range compared to GHz ferromagnetic resonance frequency);<ref name =adv>{{cite journal |last1=Gomonay |first1=O. |last2=Jungwirth |first2=T. |last3=Sinova |first3=J. |title=Concepts of antiferromagnetic spintronics |journal=Physica Status Solidi RRL |publisher=Wiley |volume=11 |issue=4 |date=21 February 2017 |issn=1862-6254 |doi=10.1002/pssr.201700022 |page=1700022 |arxiv=1701.06556|bibcode=2017PSSRR..1100022G |s2cid=73575617 }}</ref>
* broad range of commonly available antiferromagnetic materials including insulators, semiconductors, semimetals, metals, and superconductors.<ref name=adv/>
 
Research is being done into how to read and write information to antiferromagnetic spintronics as their net zero magnetization makes this difficult compared to conventional ferromagnetic spintronics. In modern MRAM, detection and manipulation of ferromagnetic order by magnetic fields has largely been abandoned in favor of more efficient and scalable reading and writing by electrical current. Methods of reading and writing information by current rather than fields are also being investigated in antiferromagnets as fields are ineffective anyway. Writing methods currently being investigated in antiferromagnets are through [[spin-transfer torque]] and [[Spin–orbit interaction|spin-orbit torque]] from the [[spin Hall effect]] and the [[Rashba effect]]. Reading information in antiferromagnets via magnetoresistance effects such as [[tunnel magnetoresistance]] is also being explored.<ref>{{cite journal |last1=Chappert |first1=Claude |last2=Fert |first2=Albert |last3=van Dau |first3=Frédéric Nguyen |title=The emergence of spin electronics in data storage |journal=Nature Materials |publisher=Springer Science and Business Media LLC |volume=6 |issue=11 |year=2007 |issn=1476-1122 |doi=10.1038/nmat2024 |pmid=17972936 |pages=813–823 |bibcode=2007NatMa...6..813C|s2cid=21075877 }}</ref>
 
== Applications ==
 
=== MRAM ===
[[Disk read-and-write head|Read heads]] of magnetic [[hard drive]]s are based on the GMR or TMR effect.
 
Motorola developed a first-generation 256&nbsp;[[kilobit|kb]] [[magnetoresistive random-access memory]] (MRAM) based on a single magnetic tunnel junction and a single transistor that has a read/write cycle of under 50 nanoseconds.<ref>[http://www.sigmaaldrich.com/materials-science/alternative-energy-materials/magnetic-materials/tutorial/spintronics.html Spintronics]. Sigma-Aldrich. Retrieved on 21 October 2013.</ref> [[Everspin]] has since developed a 4&nbsp;[[Megabit|Mb]] version.<ref>[http://www.everspin.com/technology.php Everspin] {{webarchive|url=https://web.archive.org/web/20120630001137/http://www.everspin.com/technology.php|date=30 June 2012}}. Everspin. Retrieved on 21 October 2013.</ref> Two second-generation MRAM techniques are in development: [[thermal-assisted switching]] (TAS)<ref>Hoberman, Barry. [http://www.crocustechnology.com/pdf/BH%20GSA%20Article.pdf The Emergence of Practical MRAM] {{webarchive|url=https://web.archive.org/web/20131021115241/http://www.crocustechnology.com/pdf/BH%20GSA%20Article.pdf|date=21 October 2013}}. crocustechnology.com</ref> and [[spin-transfer torque]] (STT).<ref>LaPedus, Mark (18 June 2009) [http://www.eetimes.com/document.asp?doc_id=1171188 Tower invests in Crocus, tips MRAM foundry deal]. eetimes.com</ref>
 
=== Racetrack memory ===
Another design, [[racetrack memory]], a novel memory architecture proposed by [[Stuart Parkin|Dr. Stuart S. P. Parkin]], encodes information in the direction of magnetization between domain walls of a ferromagnetic wire.


'''Magnetic-tunnel transistor''': The magnetic-tunnel transistor with a single base layer<ref name="dijken">{{Cite journal | last1 = Van Dijken | first1 = S. | last2 = Jiang | first2 = X. | last3 = Parkin | first3 = S. S. P. | doi = 10.1063/1.1474610 | title = Room temperature operation of a high output current magnetic tunnel transistor | journal = Applied Physics Letters | volume = 80 | issue = 18 | pages = 3364 | year = 2002 |bibcode = 2002ApPhL..80.3364V }}</ref> has the following terminals:
===Semiconductor laser===
Applications using spin-polarized electrical injection have shown threshold current reduction and controllable circularly polarized coherent light output.<ref>{{Cite journal |last1=Holub |first1=M. |last2=Shin |first2=J. |last3=Saha |first3=D. |last4=Bhattacharya |first4=P. |year=2007 |title=Electrical Spin Injection and Threshold Reduction in a Semiconductor Laser |journal=Physical Review Letters |volume=98 |issue=14 |page=146603 |bibcode=2007PhRvL..98n6603H |doi=10.1103/PhysRevLett.98.146603 |pmid=17501298}}</ref> Examples include semiconductor lasers. Future applications may include a spin-based [[transistor]] having advantages over [[MOSFET]] devices such as steeper sub-threshold slope.
 
=== Magnetic-tunnel transistor ===
The magnetic-tunnel transistor with a single base layer<ref name="dijken">{{Cite journal |last1=Van Dijken |first1=S. |last2=Jiang |first2=X. |last3=Parkin |first3=S. S. P. |year=2002 |title=Room temperature operation of a high output current magnetic tunnel transistor |journal=Applied Physics Letters |volume=80 |issue=18 |pages=3364 |bibcode=2002ApPhL..80.3364V |doi=10.1063/1.1474610}}</ref> has the following terminals:
* Emitter (FM1): Injects spin-polarized hot electrons into the base.
* Emitter (FM1): Injects spin-polarized hot electrons into the base.
* Base (FM2): Spin-dependent scattering takes place in the base. It also serves as a spin filter.
* Base (FM2): Spin-dependent scattering takes place in the base. It also serves as a spin filter.
Line 86: Line 106:
MTT promises a highly spin-polarized electron source at room temperature.
MTT promises a highly spin-polarized electron source at room temperature.


=== Storage media ===
==See also==
[[Antiferromagnetism|Antiferromagnetic]] storage media have been studied as an alternative to [[ferromagnetism]],<ref>{{cite web |author=Jungwirth, T. |type=announcement of a physics colloquium at a Bavarian university |date=28 April 2014 |title=Relativistic Approaches to Spintronics with Antiferromagnets |url=http://www.physik.uni-regensburg.de/aktuell/KollSS14/Kolloquium-Jungwirth.pdf |access-date=29 April 2014 |archive-date=29 April 2014 |archive-url=https://web.archive.org/web/20140429190040/http://www.physik.uni-regensburg.de/aktuell/KollSS14/Kolloquium-Jungwirth.pdf |url-status=dead }}</ref> especially since with antiferromagnetic material the bits can be stored as well as with ferromagnetic material. Instead of the usual definition 0&nbsp;↔ 'magnetisation upwards', 1&nbsp;↔ 'magnetisation downwards', the states can be, e.g., 0&nbsp;↔ 'vertically alternating spin configuration' and 1&nbsp;↔ 'horizontally-alternating spin configuration'.<ref>This corresponds mathematically to the transition from the rotation group SO(3) to its relativistic covering, the "double group" SU(2)</ref>).
 
The main advantages of antiferromagnetic material are:
 
* insensitivity to data-damaging perturbations by stray fields due to zero net external magnetization;<ref name=netzero>{{cite journal |last1=Jungwirth |first1=T. |last2=Marti |first2=X. |last3=Wadley |first3=P. |last4=Wunderlich |first4=J. |title=Antiferromagnetic spintronics |journal=Nature Nanotechnology |publisher=Springer Nature |volume=11 |issue=3 |year=2016 |issn=1748-3387 |doi=10.1038/nnano.2016.18 |pmid=26936817 |pages=231–241 |arxiv=1509.05296|bibcode=2016NatNa..11..231J |s2cid=5058124 }}</ref>
* no effect on near particles, implying that antiferromagnetic device elements would not magnetically disturb its neighboring elements;<ref name=netzero/>
* far shorter switching times (antiferromagnetic resonance frequency is in the THz range compared to GHz ferromagnetic resonance frequency);<ref name =adv>{{cite journal |last1=Gomonay |first1=O. |last2=Jungwirth |first2=T. |last3=Sinova |first3=J. |title=Concepts of antiferromagnetic spintronics |journal=Physica Status Solidi RRL |publisher=Wiley |volume=11 |issue=4 |date=21 February 2017 |issn=1862-6254 |doi=10.1002/pssr.201700022 |page=1700022 |arxiv=1701.06556|bibcode=2017PSSRR..1100022G |s2cid=73575617 }}</ref>
* broad range of commonly available antiferromagnetic materials including insulators, semiconductors, semimetals, metals, and superconductors.<ref name=adv/>
 
Research is being done into how to read and write information to antiferromagnetic spintronics as their net zero magnetization makes this difficult compared to conventional ferromagnetic spintronics. In modern MRAM, detection and manipulation of ferromagnetic order by magnetic fields has largely been abandoned in favor of more efficient and scalable reading and writing by electrical current. Methods of reading and writing information by current rather than fields are also being investigated in antiferromagnets as fields are ineffective anyway. Writing methods currently being investigated in antiferromagnets are through [[spin-transfer torque]] and [[Spin–orbit interaction|spin-orbit torque]] from the [[spin Hall effect]] and the [[Rashba effect]]. Reading information in antiferromagnets via magnetoresistance effects such as [[tunnel magnetoresistance]] is also being explored.<ref>{{cite journal |last1=Chappert |first1=Claude |last2=Fert |first2=Albert |last3=van Dau |first3=Frédéric Nguyen |title=The emergence of spin electronics in data storage |journal=Nature Materials |publisher=Springer Science and Business Media LLC |volume=6 |issue=11 |year=2007 |issn=1476-1122 |doi=10.1038/nmat2024 |pmid=17972936 |pages=813–823 |bibcode=2007NatMa...6..813C|s2cid=21075877 }}</ref>
 
== See also ==
* [[Stuart Parkin|Stuart S. P. Parkin]]  
* [[Stuart Parkin|Stuart S. P. Parkin]]  
* [[Electric dipole spin resonance]]
* [[Electric dipole spin resonance]]

Revision as of 21:36, 24 June 2025

Template:Short description Template:Use American English Template:Use dmy dates Spintronics (a portmanteau meaning spin transport electronics[1][2][3]), also known as spin electronics, is the study of the intrinsic spin of the electron and its associated magnetic moment, in addition to its fundamental electronic charge, in solid-state devices.[4] The field of spintronics concerns spin-charge coupling in metallic systems; the analogous effects in insulators fall into the field of multiferroics.

Spintronics fundamentally differs from traditional electronics in that, in addition to charge state, electron spins are used as a further degree of freedom, with implications in the efficiency of data storage and transfer. Spintronic systems are most often realised in dilute magnetic semiconductors (DMS) and Heusler alloys and are of particular interest in the field of quantum computing and neuromorphic computing, which leads to research requirements around hyperdimensional computation.

History

Spintronics emerged from discoveries in the 1980s concerning spin-dependent electron transport phenomena in solid-state devices. This includes the observation of spin-polarized electron injection from a ferromagnetic metal to a normal metal by Johnson and Silsbee (1985)[5] and the discovery of giant magnetoresistance independently by Albert Fert et al.[6] and Peter Grünberg et al. (1988).[7] The origin of spintronics can be traced to the ferromagnet/superconductor tunneling experiments pioneered by Meservey and Tedrow and initial experiments on magnetic tunnel junctions by Julliere in the 1970s.[8] The use of semiconductors for spintronics began with the theoretical proposal of a spin field-effect-transistor by Datta and Das in 1990[9] and of the electric dipole spin resonance by Rashba in 1960.[10]

In 2012, persistent spin helices of synchronized electrons were made to persist for more than a nanosecond, a 30-fold increase over earlier efforts, and longer than the duration of a modern processor clock cycle.[11]

In 2025, at Template:Convert crystalline NiI2 was reported to exhibit p-wave magnetism, in which the spins of nickel atoms became arranged in a spiral pattern in two orientations. The orientations can be switched via a small electrical current. Applied in digital devices, this spintronics behavior requires far less current than the conventional charge-based electronics that powers devices such as computers and phones.[12]

Theory

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The spin of the electron is an intrinsic angular momentum that is separate from the angular momentum due to its orbital motion. The magnitude of the projection of the electron's spin along an arbitrary axis is 12, implying that the electron acts as a fermion by the spin-statistics theorem. Like orbital angular momentum, the spin has an associated magnetic moment, the magnitude of which is expressed as

μ=32qme.

In a solid, the spins of many electrons can act together to affect the magnetic and electronic properties of a material, for example endowing it with a permanent magnetic moment as in a ferromagnet.

In many materials, electron spins are equally present in both the up and the down state, and no transport properties are dependent on spin. A spintronic device requires generation or manipulation of a spin-polarized population of electrons, resulting in an excess of spin up or spin down electrons. The polarization of any spin dependent property X can be written as

PX=XXX+X.

A net spin polarization can be achieved either through creating an equilibrium energy split between spin up and spin down. Methods include putting a material in a large magnetic field (Zeeman effect), the exchange energy present in a ferromagnet or forcing the system out of equilibrium. The period of time that such a non-equilibrium population can be maintained is known as the spin lifetime, τ.

In a diffusive conductor, a spin diffusion length λ can be defined as the distance over which a non-equilibrium spin population can propagate. Spin lifetimes of conduction electrons in metals are relatively short (typically less than 1 nanosecond). An important research area is devoted to extending this lifetime to technologically relevant timescales.

File:Spin Injection.svg
A plot showing a spin up, spin down, and the resulting spin polarized population of electrons. Inside a spin injector, the polarization is constant, while outside the injector, the polarization decays exponentially to zero as the spin up and down populations go to equilibrium.

The mechanisms of decay for a spin polarized population can be broadly classified as spin-flip scattering and spin dephasing. Spin-flip scattering is a process inside a solid that does not conserve spin, and can therefore switch an incoming spin up state into an outgoing spin down state. Spin dephasing is the process wherein a population of electrons with a common spin state becomes less polarized over time due to different rates of electron spin precession. In confined structures, spin dephasing can be suppressed, leading to spin lifetimes of milliseconds in semiconductor quantum dots at low temperatures.

Superconductors can enhance central effects in spintronics such as magnetoresistance effects, spin lifetimes and dissipationless spin-currents.[13][14]

The simplest method of generating a spin-polarised current in a metal is to pass the current through a ferromagnetic material. The most common applications of this effect involve giant magnetoresistance (GMR) devices. A typical GMR device consists of at least two layers of ferromagnetic materials separated by a spacer layer. When the two magnetization vectors of the ferromagnetic layers are aligned, the electrical resistance will be lower (so a higher current flows at constant voltage) than if the ferromagnetic layers are anti-aligned. This constitutes a magnetic field sensor.

Two variants of GMR have been applied in devices: (1) current-in-plane (CIP), where the electric current flows parallel to the layers and (2) current-perpendicular-to-plane (CPP), where the electric current flows in a direction perpendicular to the layers.

Other metal-based spintronics devices:

  • Tunnel magnetoresistance (TMR), where CPP transport is achieved by using quantum-mechanical tunneling of electrons through a thin insulator separating ferromagnetic layers.
  • Spin-transfer torque, where a current of spin-polarized electrons is used to control the magnetization direction of ferromagnetic electrodes in the device.
  • Spin-wave logic devices carry information in the phase. Interference and spin-wave scattering can perform logic operations.

Device types

Spintronic-logic

Non-volatile spin-logic devices to enable scaling are being extensively studied.[15] Spin-transfer, torque-based logic devices that use spins and magnets for information processing have been proposed.[16][17] These devices are part of the ITRS exploratory road map. Logic-in memory applications are already in the development stage.[18][19] A 2017 review article can be found in Materials Today.[4]

A generalized circuit theory for spintronic integrated circuits has been proposed[20] so that the physics of spin transport can be utilized by SPICE developers and subsequently by circuit and system designers for the exploration of spintronics for "beyond CMOS computing".

Semiconductor

Doped semiconductor materials display dilute ferromagnetism. In recent years, dilute magnetic oxides (DMOs) including ZnO based DMOs and TiO2-based DMOs have been the subject of numerous experimental and computational investigations.[21][22] Non-oxide ferromagnetic semiconductor sources (like manganese-doped gallium arsenide Template:Chem2),[23] increase the interface resistance with a tunnel barrier,[24] or using hot-electron injection.[25]

Spin detection in semiconductors has been addressed with multiple techniques:

  • Faraday/Kerr rotation of transmitted/reflected photons[26]
  • Circular polarization analysis of electroluminescence[27]
  • Nonlocal spin valve (adapted from Johnson and Silsbee's work with metals)[28]
  • Ballistic spin filtering[29]

The latter technique was used to overcome the lack of spin-orbit interaction and materials issues to achieve spin transport in silicon.[30]

Because external magnetic fields (and stray fields from magnetic contacts) can cause large Hall effects and magnetoresistance in semiconductors (which mimic spin-valve effects), the only conclusive evidence of spin transport in semiconductors is demonstration of spin precession and dephasing in a magnetic field non-collinear to the injected spin orientation, called the Hanle effect.

Storage media

Antiferromagnetic storage media have been studied as an alternative to ferromagnetism,[31] especially since with antiferromagnetic material the bits can be stored as well as with ferromagnetic material. Instead of the usual definition 0 ↔ 'magnetisation upwards', 1 ↔ 'magnetisation downwards', the states can be, e.g., 0 ↔ 'vertically alternating spin configuration' and 1 ↔ 'horizontally-alternating spin configuration'.[32]).

The main advantages of antiferromagnetic material are:

  • insensitivity to data-damaging perturbations by stray fields due to zero net external magnetization;[33]
  • no effect on near particles, implying that antiferromagnetic device elements would not magnetically disturb its neighboring elements;[33]
  • far shorter switching times (antiferromagnetic resonance frequency is in the THz range compared to GHz ferromagnetic resonance frequency);[34]
  • broad range of commonly available antiferromagnetic materials including insulators, semiconductors, semimetals, metals, and superconductors.[34]

Research is being done into how to read and write information to antiferromagnetic spintronics as their net zero magnetization makes this difficult compared to conventional ferromagnetic spintronics. In modern MRAM, detection and manipulation of ferromagnetic order by magnetic fields has largely been abandoned in favor of more efficient and scalable reading and writing by electrical current. Methods of reading and writing information by current rather than fields are also being investigated in antiferromagnets as fields are ineffective anyway. Writing methods currently being investigated in antiferromagnets are through spin-transfer torque and spin-orbit torque from the spin Hall effect and the Rashba effect. Reading information in antiferromagnets via magnetoresistance effects such as tunnel magnetoresistance is also being explored.[35]

Applications

MRAM

Read heads of magnetic hard drives are based on the GMR or TMR effect.

Motorola developed a first-generation 256 kb magnetoresistive random-access memory (MRAM) based on a single magnetic tunnel junction and a single transistor that has a read/write cycle of under 50 nanoseconds.[36] Everspin has since developed a 4 Mb version.[37] Two second-generation MRAM techniques are in development: thermal-assisted switching (TAS)[38] and spin-transfer torque (STT).[39]

Racetrack memory

Another design, racetrack memory, a novel memory architecture proposed by Dr. Stuart S. P. Parkin, encodes information in the direction of magnetization between domain walls of a ferromagnetic wire.

Semiconductor laser

Applications using spin-polarized electrical injection have shown threshold current reduction and controllable circularly polarized coherent light output.[40] Examples include semiconductor lasers. Future applications may include a spin-based transistor having advantages over MOSFET devices such as steeper sub-threshold slope.

Magnetic-tunnel transistor

The magnetic-tunnel transistor with a single base layer[41] has the following terminals:

  • Emitter (FM1): Injects spin-polarized hot electrons into the base.
  • Base (FM2): Spin-dependent scattering takes place in the base. It also serves as a spin filter.
  • Collector (GaAs): A Schottky barrier is formed at the interface. It only collects electrons that have enough energy to overcome the Schottky barrier, and when states are available in the semiconductor.

The magnetocurrent (MC) is given as:

MC=Ic,pIc,apIc,ap

And the transfer ratio (TR) is

TR=ICIE

MTT promises a highly spin-polarized electron source at room temperature.

See also

References

Template:Reflist

Further reading

  • "Introduction to Spintronics". Marc Cahay, Supriyo Bandyopadhyay, CRC Press, Template:ISBN
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  • "Spintronics Steps Forward.", University of South Florida News
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External links

Template:Electronic systems Template:Emerging technologies Template:Authority control

  1. Script error: No such module "Citation/CS1".
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  3. Spintronics: A Spin-Based Electronics Vision for the Future. Sciencemag.org (16 November 2001). Retrieved on 21 October 2013.
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  10. E. I. Rashba, Cyclotron and combined resonances in a perpendicular field, Sov. Phys. Solid State 2, 1109 -1122 (1960)
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  15. International Technology Roadmap for Semiconductors
  16. Script error: No such module "Citation/CS1".
  17. Manipatruni, Sasikanth; Nikonov, Dmitri E. and Young, Ian A. (2011) [1112.2746] Circuit Theory for SPICE of Spintronic Integrated Circuits. Arxiv.org. Retrieved on 21 October 2013.
  18. Crocus Partners With Starchip To Develop System-On-Chip Solutions Based on Magnetic-Logic-Unit (MLU) Technology. crocus-technology.com. 8 December 2011
  19. Groundbreaking New Technology for Improving the Reliability of Spintronics Logic Integrated Circuits. Nec.com. 11 June 2012.
  20. S. Manipatruni, D. E. Nikonov and I. A. Young, "Modeling and Design of Spintronic Integrated Circuits," in IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 59, no. 12, pp. 2801–2814, Dec. 2012, doi: 10.1109/TCSI.2012.2206465. https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6359950&isnumber=6359940
  21. Script error: No such module "Citation/CS1".
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  27. Jonker, Berend T. Polarized optical emission due to decay or recombination of spin-polarized injected carriers – US Patent 5874749 Template:Webarchive. Issued on 23 February 1999.
  28. Script error: No such module "Citation/CS1".
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  32. This corresponds mathematically to the transition from the rotation group SO(3) to its relativistic covering, the "double group" SU(2)
  33. a b Script error: No such module "Citation/CS1".
  34. a b Script error: No such module "Citation/CS1".
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  36. Spintronics. Sigma-Aldrich. Retrieved on 21 October 2013.
  37. Everspin Template:Webarchive. Everspin. Retrieved on 21 October 2013.
  38. Hoberman, Barry. The Emergence of Practical MRAM Template:Webarchive. crocustechnology.com
  39. LaPedus, Mark (18 June 2009) Tower invests in Crocus, tips MRAM foundry deal. eetimes.com
  40. Script error: No such module "Citation/CS1".
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