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{{More footnotes needed|date=September 2015}}
{{More footnotes needed|date=September 2015}}
{{Modern physics}}
{{Modern physics}}
'''Atomic physics''' is the field of [[physics]] that studies [[atom]]s as an isolated system of [[electron]]s and an [[atomic nucleus]]. Atomic physics typically refers to the study of atomic structure and the interaction between atoms.<ref>{{Cite book|last=Demtröder|first=W.|url=https://www.worldcat.org/oclc/262692011|title=Atoms, molecules and photons : an introduction to atomic-, molecular-, and quantum-physics|date=2006|publisher=Springer|isbn=978-3-540-32346-4|location=Berlin|oclc=262692011}}</ref> It is primarily concerned with [[Electron configuration|the way in which electrons are arranged around the nucleus]] and
'''Atomic physics''' is the field of [[physics]] that studies [[atom]]s as an isolated system of [[electron]]s and an [[atomic nucleus]]. Atomic physics typically refers to the study of atomic structure and the interaction between atoms.<ref>{{Cite book|last=Demtröder|first=W.|title=Atoms, molecules and photons : an introduction to atomic-, molecular-, and quantum-physics|date=2006|publisher=Springer|isbn=978-3-540-32346-4|location=Berlin|oclc=262692011}}</ref> It is primarily concerned with [[Electron configuration|the way in which electrons are arranged around the nucleus]] and
the processes by which these arrangements change. This comprises [[ion]]s, neutral atoms and, unless otherwise stated, it can be assumed that the term ''atom'' includes ions.
the processes by which these arrangements change. This comprises [[ion]]s, neutral atoms and, unless otherwise stated, it can be assumed that the term ''atom'' includes ions.


The term ''atomic physics'' can be associated with [[nuclear power]] and [[nuclear weapon]]s, due to the [[synonym]]ous use of ''atomic'' and ''nuclear'' in [[standard English]]. Physicists distinguish between atomic physics—which deals with the atom as a system consisting of a nucleus and electrons—and [[nuclear physics]], which studies [[nuclear reaction]]s and special properties of atomic nuclei.
The term ''atomic physics'' can be associated with [[nuclear power]] and [[nuclear weapon]]s, due to the [[synonym]]ous use of ''atomic'' and ''nuclear'' in [[standard English]]. Physicists distinguish between atomic physics—which deals with the atom as a system consisting of a nucleus and electrons—and [[nuclear physics]], which studies [[nuclear reaction]]s and special properties of atomic nuclei.


As with many scientific fields, strict delineation can be highly contrived and atomic physics is often considered in the wider context of [[atomic, molecular, and optical physics]]. Physics research groups are usually so classified.
As with many scientific fields, strict delineation can be highly contrived and atomic physics is often considered in the wider context of [[atomic, molecular, and optical physics]]. As a result, atomic physics research groups are usually classified as such.


==Isolated atoms==
== Isolated atoms ==
Atomic physics primarily considers atoms in isolation. Atomic models will consist of a single nucleus that may be surrounded by one or more bound electrons. It is not concerned with the formation of [[molecule]]s (although much of the physics is identical), nor does it examine atoms in a [[solid-state physics|solid state]] as [[condensed matter]]. It is concerned with processes such as [[ionization]] and [[excited state|excitation]] by photons or collisions with atomic particles.
Atomic physics primarily considers atoms in isolation. Atomic models will consist of a single nucleus that may be surrounded by one or more bound electrons. It is not concerned with the formation of [[molecule]]s (although much of the physics is identical), nor does it examine atoms in a [[solid-state physics|solid state]] as [[condensed matter]]. It is concerned with processes such as [[ionization]] and [[excited state|excitation]] by photons or collisions with atomic particles.


While modelling atoms in isolation may not seem realistic, if one considers atoms in a [[gas]] or [[Plasma (physics)|plasma]] then the time-scales for atom-atom interactions are huge in comparison to the atomic processes that are generally considered. This means that the individual atoms can be treated as if each were in isolation, as the vast majority of the time they are.  By this consideration, atomic physics provides the underlying theory in plasma physics and [[atmospheric physics]], even though both deal with very large numbers of atoms.
While modelling atoms in isolation may not seem realistic, if one considers atoms in a [[gas]] or [[Plasma (physics)|plasma]] then the time-scales for atom-atom interactions are huge in comparison to the atomic processes that are generally considered. This means that the individual atoms can be treated as if each were in isolation, as the vast majority of the time they are.  By this consideration, atomic physics provides the underlying theory in plasma physics and [[atmospheric physics]], even though both deal with very large numbers of atoms.


==Electronic configuration==
== Electronic configuration ==
Electrons form notional [[Electron shells|shells]] around the nucleus. These are normally in a [[ground state]] but can be excited by the absorption of energy from light ([[photon]]s), [[magnetic field]]s, or interaction with a colliding particle (typically ions or other electrons).
Electrons form notional [[Electron shells|shells]] around the nucleus. These are normally in a [[ground state]] but can be excited by the absorption of energy from light ([[photon]]s), [[magnetic field]]s, or interaction with a colliding particle (typically ions or other electrons).


[[File:Bohr atom model.svg|thumb|In the Bohr model, the transition of an electron with n=3 to the shell n=2 is shown, where a photon is emitted. An electron from shell (n=2) must have been removed beforehand by ionization]] Electrons that populate a shell are said to be in a [[bound state]].  The energy necessary to remove an electron from its shell (taking it to infinity) is called the [[binding energy]].  Any quantity of energy absorbed by the electron in excess of this amount is converted to [[kinetic energy]] according to the [[conservation of energy]].  The atom is said to have undergone the process of ionization.
[[File:Bohr atom model.svg|thumb|In the Bohr model, the transition of an electron with n=3 to the shell n=2 is shown, where a photon is emitted. An electron from shell (n=2) must have been removed beforehand by ionization]] Electrons that populate a shell are said to be in a [[bound state]].  The energy necessary to remove an electron from its shell (taking it to infinity) is called the [[binding energy]].  Any quantity of energy absorbed by the electron in excess of this amount is converted to [[kinetic energy]] according to the [[conservation of energy]].  The atom is said to have undergone the process of ionization.


If the electron absorbs a quantity of energy less than the binding energy, it will be transferred to an excited state. After a certain time, the electron in an excited state will "jump" (undergo a transition) to a lower state. In a neutral atom, the system will emit a photon of the difference in energy, since energy is conserved.
If the electron absorbs a quantity of energy less than the binding energy, it will be transferred to an [[excited state]]. After a certain time, the electron in an excited state will "jump" (undergo a transition) to a lower state. In a neutral atom, the system will emit a photon of the difference in energy, since energy is conserved.


If an inner electron has absorbed more than the binding energy (so that the atom ionizes), then a more outer electron may undergo a transition to fill the inner orbital. In this case, a visible photon or a [[characteristic x-ray|characteristic X-ray]] is emitted, or a phenomenon known as the [[Auger effect]] may take place, where the released energy is transferred to another bound electron, causing it to go into the continuum.  The Auger effect allows one to multiply ionize an atom with a single photon.
If an inner electron has absorbed more than the binding energy (so that the atom ionizes), then a more outer electron may undergo a transition to fill the inner orbital. In this case, a visible photon or a [[characteristic x-ray|characteristic X-ray]] is emitted, or a phenomenon known as the [[Auger effect]] may take place, where the released energy is transferred to another bound electron, causing it to go into the continuum.  The Auger effect allows one to multiply ionize an atom with a single photon.


There are rather strict [[selection rule]]s as to the electronic configurations that can be reached by excitation by light however, there are no such rules for excitation by collision processes.
There are rather strict [[selection rule]]s as to the electronic configurations that can be reached by excitation by light {{Ndash}}however, there are no such rules for excitation by collision processes.


===Bohr Model of the Atom===
=== Bohr model of the atom ===


The Bohr model, proposed by '''Niels Bohr in 1913''', is a revolutionary theory describing the structure of the hydrogen atom. It introduced the idea of quantized orbits for electrons, combining classical and quantum physics.
The Bohr model, proposed by '''Niels Bohr in 1913''', is a revolutionary theory describing the structure of the hydrogen atom. It introduced the idea of quantized orbits for electrons, combining classical and quantum physics.


'''Key Postulates of the Bohr Model'''
; Key Postulates of the Bohr Model :
# Electrons Move in Circular Orbits
#* Electrons revolve around the nucleus in fixed, circular paths called '''orbits''' or '''energy levels'''.
#* These orbits are '''stable''' and do not radiate energy.
# '''Quantization of Angular Momentum:'''
#* The angular momentum of an electron is quantized and given by: <math display="block">\ L = m_\text{e}vr = n\hbar, \quad n = 1, 2, 3, \ldots </math> where:
#*: <math> m_\text{e} </math>: electron mass
#*: <math> v </math>: velocity of the electron
#*: <math> r </math>: radius of the orbit
#*: <math> \hbar </math>: reduced Planck constant (<math>\hbar = {h}/{2\pi}</math>)
#*: <math> n </math>: principal quantum number, representing the orbit
# Energy Levels
#* Each orbit has a specific energy. The total energy of an electron in the <math>n</math>th orbit is: <math display="block">\ E_n = -\frac{\mathrm{13.6~eV}}{n^2}, </math> where <math> \mathrm{13.6~eV} </math> is the ground-state energy of the hydrogen atom.
# Emission or Absorption of Energy
#* Electrons can transition between orbits by '''absorbing''' or '''emitting''' energy equal to the difference between the energy levels: <math display="block"> \Delta E = E_\text{f} - E_\text{i} = h\nu, </math> where:
#*: <math> h </math>: the Planck constant.
#*: <math> \nu </math>: frequency of emitted/absorbed radiation.
#*: <math> E_\text{f}, E_\text{i} </math>: final and initial energy levels.


'''1. Electrons Move in Circular Orbits:'''
== History and developments ==
 
• Electrons revolve around the nucleus in fixed, circular paths called '''orbits''' or '''energy levels'''.
 
• These orbits are '''stable''' and do not radiate energy.
 
'''2. Quantization of Angular Momentum:'''
 
• The angular momentum of an electron is quantized and given by:
 
:<math>\ L = m_{e}vr = n_{\hbar}, \quad n = 1, 2, 3, \ldots </math>
 
where:
 
• <math> m_e : </math> Mass of the electron.
 
• <math> v : </math> Velocity of the electron.
 
• <math> r : </math> Radius of the orbit.
 
• <math> \hbar : </math> Reduced Planck's constant (<math>\hbar = \frac{h}{2\pi}</math>).
 
• <math> n : </math> Principal quantum number, representing the orbit.
 
'''3. Energy Levels:'''
 
• Each orbit has a specific energy. The total energy of an electron in the <math>n</math>th orbit is:
 
:<math>\ E_n = -\frac{13.6}{n^2} \ \text{eV}, </math>
 
where <math> 13.6 \ \text{eV} </math> is the ground-state energy of the hydrogen atom.
 
'''4. Emission or Absorption of Energy:'''
 
• Electrons can transition between orbits by '''absorbing''' or '''emitting''' energy equal to the difference between the energy levels:
 
:<math>\ \Delta E = E_f - E_i = h\nu, </math>
 
where:
 
• <math> h : </math> Planck's constant.
 
• <math> \nu : </math> Frequency of emitted/absorbed radiation.
 
• <math> E_f, E_i : </math> Final and initial energy levels.
 
==History and developments==
{{Main|Atomic theory}}
{{Main|Atomic theory}}
One of the earliest steps towards atomic physics was the recognition that matter was composed
One of the earliest steps towards atomic physics was the recognition that matter was composed
Line 88: Line 59:
Since the [[World War II|Second World War]], both theoretical and experimental fields have advanced at a rapid pace. This can be attributed to progress in computing technology, which has allowed larger and more sophisticated models of atomic structure and associated collision processes.<ref>{{Cite book |last1=Bell |first1=K.L. |title=Supercomputing, Collision Processes, and Applications |last2=Berrington |first2=K.A. |last3=Crothers |first3=D.S.F. |last4=Hilbert |first4=A. |last5=Taylor |first5=K. |year=2002 |publisher=Springer |isbn=0-306-46190-0}}</ref><ref>{{Cite book |last1=Amusia |first1=M. Ya. |title=Computation of Atomic Processes |last2=Chernysheva |first2=L.V. |publisher=Institute of Physics Publishing |year=1997 |isbn=0-7503-0229-1}}</ref> Similar technological advances in [[Accelerator physics|accelerators]], detectors, magnetic field generation and [[laser]]s have greatly assisted experimental work.
Since the [[World War II|Second World War]], both theoretical and experimental fields have advanced at a rapid pace. This can be attributed to progress in computing technology, which has allowed larger and more sophisticated models of atomic structure and associated collision processes.<ref>{{Cite book |last1=Bell |first1=K.L. |title=Supercomputing, Collision Processes, and Applications |last2=Berrington |first2=K.A. |last3=Crothers |first3=D.S.F. |last4=Hilbert |first4=A. |last5=Taylor |first5=K. |year=2002 |publisher=Springer |isbn=0-306-46190-0}}</ref><ref>{{Cite book |last1=Amusia |first1=M. Ya. |title=Computation of Atomic Processes |last2=Chernysheva |first2=L.V. |publisher=Institute of Physics Publishing |year=1997 |isbn=0-7503-0229-1}}</ref> Similar technological advances in [[Accelerator physics|accelerators]], detectors, magnetic field generation and [[laser]]s have greatly assisted experimental work.


Beyond the well-known phenomena which can be describe with regular quantum mechanics  [[Chaos theory|chaotic]] processes<ref>{{Cite book |last1=Blümel |first1=R. |title=Chaos in Atomic Physics |last2=Reinhardt |first2=W.P |publisher=Cambridge University Press |year=1997 |isbn=0-521-45502-2}}</ref> can occur which need different descriptions.
Beyond the well-known phenomena which can be described with regular quantum mechanics  [[Chaos theory|chaotic]] processes<ref>{{Cite book |last1=Blümel |first1=R. |title=Chaos in Atomic Physics |last2=Reinhardt |first2=W.P |publisher=Cambridge University Press |year=1997 |isbn=0-521-45502-2}}</ref> can occur which need different descriptions.


==Significant atomic physicists==
== Significant atomic physicists ==
{{Columns-list|colwidth=30em|
{{Columns-list|colwidth=30em|
; Pre quantum mechanics
; Pre quantum mechanics :
* [[John Dalton]]
* [[John Dalton]]
* [[Joseph von Fraunhofer]]
* [[Joseph von Fraunhofer]]
Line 100: Line 71:
* [[Democritus]]
* [[Democritus]]
* {{Lang|sa-latn|[[Vaiśeṣika Sūtra]]|italic=no}}
* {{Lang|sa-latn|[[Vaiśeṣika Sūtra]]|italic=no}}
; Post quantum mechanics
; Post quantum mechanics :
* [[Alexander Dalgarno]]
* [[Alexander Dalgarno]]
* [[David Bates (physicist)|David Bates]]
* [[David Bates (physicist)|David Bates]]
Line 121: Line 92:
* [[John C. Slater]]
* [[John C. Slater]]
* [[George Paget Thomson]]
* [[George Paget Thomson]]
* [[Maximilian Beyer]]
}}
}}


==See also==
== See also ==
*[[Particle physics]]
* [[Particle physics]]
*[[Isomeric shift]]
* [[Isomeric shift]]
*[[Atomism]]
* [[Atomism]]
*[[Ionisation (Varèse)|Ionisation]]
* [[Ionisation (Varèse)|Ionisation]]
*[[Quantum mechanics|Quantum Mechanics]]  
* [[Quantum mechanics|Quantum Mechanics]]  
*[[Electronic correlation|Electron Correlation]]
* [[Electronic correlation|Electron Correlation]]
*[[Quantum chemistry|Quantum Chemistry]]
* [[Quantum chemistry|Quantum Chemistry]]
*[[Bound state|Bound State]]
* [[Bound state|Bound State]]


== Bibliography ==
== Bibliography ==
Line 139: Line 109:
* {{Cite book|title=Atomic Physics|author=Foot, CJ|year=2004|
* {{Cite book|title=Atomic Physics|author=Foot, CJ|year=2004|
     publisher=Oxford University Press|isbn=978-0-19-850696-6}}
     publisher=Oxford University Press|isbn=978-0-19-850696-6}}
*Smirnov, B.E. (2003) ''Physics of Atoms and Ions'', Springer. {{ISBN|0-387-95550-X}}.
* Smirnov, B.E. (2003) ''Physics of Atoms and Ions'', Springer. {{ISBN|0-387-95550-X}}.
*Szász, L. (1992) ''The Electronic Structure of Atoms,'' John Willey & Sons. {{ISBN|0-471-54280-6}}.
* Szász, L. (1992) ''The Electronic Structure of Atoms,'' John Willey & Sons. {{ISBN|0-471-54280-6}}.
*{{Cite book |last=Herzberg |first=Gerhard |title=Atomic Spectra and Atomic Structure |year=1979 |orig-year=1945 |publisher=Dover |location=New York |isbn=978-0-486-60115-1}}
* {{Cite book |last=Herzberg |first=Gerhard |title=Atomic Spectra and Atomic Structure |year=1979 |orig-year=1945 |publisher=Dover |location=New York |isbn=978-0-486-60115-1}}
*Bethe, H.A. & Salpeter E.E. (1957) ''Quantum Mechanics of One- and Two Electron Atoms.'' Springer.   
* Bethe, H.A. & Salpeter E.E. (1957) ''Quantum Mechanics of One- and Two Electron Atoms.'' Springer.   
*Born, M. (1937) ''Atomic Physics.'' Blackie & Son Limited.   
* Born, M. (1937) ''Atomic Physics.'' Blackie & Son Limited.   
*Cox, P.A. (1996) ''Introduction to Quantum Theory and Atomic Spectra''. Oxford University Press. I[[ISBN|SBN 0-19-855916]]   
* Cox, P.A. (1996) ''Introduction to Quantum Theory and Atomic Spectra''. Oxford University Press. I[[ISBN|SBN 0-19-855916]]   
* {{Cite book|title=The Theory of Atomic Spectra|author1=Condon, E.U.  |author2=Shortley, G.H. |name-list-style=amp |year=1935|
* {{Cite book|title=The Theory of Atomic Spectra|author1=Condon, E.U.  |author2=Shortley, G.H. |name-list-style=amp |year=1935|
     publisher=Cambridge University Press|isbn=978-0-521-09209-8}}
     publisher=Cambridge University Press|isbn=978-0-521-09209-8}}
Line 152: Line 122:
     edition=Second|publisher=Springer-Verlag|isbn=978-0-387-16649-0}}
     edition=Second|publisher=Springer-Verlag|isbn=978-0-387-16649-0}}


==References==
== References ==
{{Reflist}}
{{reflist}}


==External links==
== External links ==
{{Commons category}}
{{Commons category}}
*[http://cuaweb.mit.edu/ MIT-Harvard Center for Ultracold Atoms]
* [http://cuaweb.mit.edu/ MIT-Harvard Center for Ultracold Atoms]
*[https://qfarm.stanford.edu Stanford QFARM Initiative for Quantum Science & Enginneering]
* [https://qfarm.stanford.edu Stanford QFARM Initiative for Quantum Science & Enginneering]
*[http://jqi.umd.edu Joint Quantum Institute at University of Maryland and NIST]
* [http://jqi.umd.edu Joint Quantum Institute at University of Maryland and NIST]
*[https://web.archive.org/web/20031204233636/http://plasma-gate.weizmann.ac.il/API.html Atomic Physics on the Internet]
* [https://web.archive.org/web/20031204233636/http://plasma-gate.weizmann.ac.il/API.html Atomic Physics on the Internet]
*[https://web.archive.org/web/20120305214247/http://jila.colorado.edu/research_highlights JILA (Atomic Physics)]
* [https://web.archive.org/web/20120305214247/http://jila.colorado.edu/research_highlights JILA (Atomic Physics)]
*[http://www.phy.ornl.gov ORNL Physics Division]
* [http://www.phy.ornl.gov ORNL Physics Division]


{{Physics-footer}}
{{Physics-footer}}

Latest revision as of 00:18, 11 November 2025

Template:Short description Script error: No such module "For". Template:More footnotes needed Template:Modern physics Atomic physics is the field of physics that studies atoms as an isolated system of electrons and an atomic nucleus. Atomic physics typically refers to the study of atomic structure and the interaction between atoms.[1] It is primarily concerned with the way in which electrons are arranged around the nucleus and the processes by which these arrangements change. This comprises ions, neutral atoms and, unless otherwise stated, it can be assumed that the term atom includes ions.

The term atomic physics can be associated with nuclear power and nuclear weapons, due to the synonymous use of atomic and nuclear in standard English. Physicists distinguish between atomic physics—which deals with the atom as a system consisting of a nucleus and electrons—and nuclear physics, which studies nuclear reactions and special properties of atomic nuclei.

As with many scientific fields, strict delineation can be highly contrived and atomic physics is often considered in the wider context of atomic, molecular, and optical physics. As a result, atomic physics research groups are usually classified as such.

Isolated atoms

Atomic physics primarily considers atoms in isolation. Atomic models will consist of a single nucleus that may be surrounded by one or more bound electrons. It is not concerned with the formation of molecules (although much of the physics is identical), nor does it examine atoms in a solid state as condensed matter. It is concerned with processes such as ionization and excitation by photons or collisions with atomic particles.

While modelling atoms in isolation may not seem realistic, if one considers atoms in a gas or plasma then the time-scales for atom-atom interactions are huge in comparison to the atomic processes that are generally considered. This means that the individual atoms can be treated as if each were in isolation, as the vast majority of the time they are. By this consideration, atomic physics provides the underlying theory in plasma physics and atmospheric physics, even though both deal with very large numbers of atoms.

Electronic configuration

Electrons form notional shells around the nucleus. These are normally in a ground state but can be excited by the absorption of energy from light (photons), magnetic fields, or interaction with a colliding particle (typically ions or other electrons).

File:Bohr atom model.svg
In the Bohr model, the transition of an electron with n=3 to the shell n=2 is shown, where a photon is emitted. An electron from shell (n=2) must have been removed beforehand by ionization

Electrons that populate a shell are said to be in a bound state. The energy necessary to remove an electron from its shell (taking it to infinity) is called the binding energy. Any quantity of energy absorbed by the electron in excess of this amount is converted to kinetic energy according to the conservation of energy. The atom is said to have undergone the process of ionization.

If the electron absorbs a quantity of energy less than the binding energy, it will be transferred to an excited state. After a certain time, the electron in an excited state will "jump" (undergo a transition) to a lower state. In a neutral atom, the system will emit a photon of the difference in energy, since energy is conserved.

If an inner electron has absorbed more than the binding energy (so that the atom ionizes), then a more outer electron may undergo a transition to fill the inner orbital. In this case, a visible photon or a characteristic X-ray is emitted, or a phenomenon known as the Auger effect may take place, where the released energy is transferred to another bound electron, causing it to go into the continuum. The Auger effect allows one to multiply ionize an atom with a single photon.

There are rather strict selection rules as to the electronic configurations that can be reached by excitation by light Template:Ndashhowever, there are no such rules for excitation by collision processes.

Bohr model of the atom

The Bohr model, proposed by Niels Bohr in 1913, is a revolutionary theory describing the structure of the hydrogen atom. It introduced the idea of quantized orbits for electrons, combining classical and quantum physics.

Key Postulates of the Bohr Model
  1. Electrons Move in Circular Orbits
    • Electrons revolve around the nucleus in fixed, circular paths called orbits or energy levels.
    • These orbits are stable and do not radiate energy.
  2. Quantization of Angular Momentum:
    • The angular momentum of an electron is quantized and given by:  L=mevr=n,n=1,2,3, where:
      me: electron mass
      v: velocity of the electron
      r: radius of the orbit
      : reduced Planck constant (=h/2π)
      n: principal quantum number, representing the orbit
  3. Energy Levels
    • Each orbit has a specific energy. The total energy of an electron in the nth orbit is:  En=13.6eVn2, where 13.6eV is the ground-state energy of the hydrogen atom.
  4. Emission or Absorption of Energy
    • Electrons can transition between orbits by absorbing or emitting energy equal to the difference between the energy levels: ΔE=EfEi=hν, where:
      h: the Planck constant.
      ν: frequency of emitted/absorbed radiation.
      Ef,Ei: final and initial energy levels.

History and developments

Script error: No such module "Labelled list hatnote". One of the earliest steps towards atomic physics was the recognition that matter was composed of atoms. It forms a part of the texts written in 6th century BC to 2nd century BC, such as those of Democritus or Script error: No such module "Lang". written by Script error: No such module "Lang"..[2][3] This theory was later developed in the modern sense of the basic unit of a chemical element by the British chemist and physicist John Dalton in the 18th century.[4] At this stage, it was not clear what atoms were, although they could be described and classified by their properties (in bulk). The invention of the periodic system of elements by Dmitri Mendeleev was another great step forward.

The true beginning of atomic physics is marked by the discovery of spectral lines and attempts to describe the phenomenon, most notably by Joseph von Fraunhofer.[5] The study of these lines led to the Bohr atom model and to the birth of quantum mechanics. In seeking to explain atomic spectra, an entirely new mathematical model of matter was revealed. As far as atoms and their electron shells were concerned, not only did this yield a better overall description, i.e. the atomic orbital model, but it also provided a new theoretical basis for chemistry (quantum chemistry) and spectroscopy.[6]

Since the Second World War, both theoretical and experimental fields have advanced at a rapid pace. This can be attributed to progress in computing technology, which has allowed larger and more sophisticated models of atomic structure and associated collision processes.[7][8] Similar technological advances in accelerators, detectors, magnetic field generation and lasers have greatly assisted experimental work.

Beyond the well-known phenomena which can be described with regular quantum mechanics chaotic processes[9] can occur which need different descriptions.

Significant atomic physicists

Template:Columns-list

See also

Bibliography

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  • Sommerfeld, A. (1923) Atomic structure and spectral lines. (translated from German "Atombau und Spektrallinien" 1921), Dutton Publisher.
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  • Smirnov, B.E. (2003) Physics of Atoms and Ions, Springer. Template:ISBN.
  • Szász, L. (1992) The Electronic Structure of Atoms, John Willey & Sons. Template:ISBN.
  • Script error: No such module "citation/CS1".
  • Bethe, H.A. & Salpeter E.E. (1957) Quantum Mechanics of One- and Two Electron Atoms. Springer.
  • Born, M. (1937) Atomic Physics. Blackie & Son Limited.
  • Cox, P.A. (1996) Introduction to Quantum Theory and Atomic Spectra. Oxford University Press. ISBN 0-19-855916
  • Script error: No such module "citation/CS1".
  • Script error: No such module "citation/CS1".
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References

Template:Reflist

External links

Template:Sister project

Template:Physics-footer Template:Authority control

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