The Semiclassical Limit of the Gailitis Formula Applied to Electron Impact Broadening of Spectral Lines of Ionized Atoms
Abstract
:1. Introduction
2. Brief Recall: Stark Broadening Widths of Isolated Lines of Ionized Atoms in the Impact Approximation
3. The Gailitis Formula for the Feshbach Resonances which Increase the Elastic Cross-Section
4. The Semiclassical Limit of the Galitis Formula for the Elastic Cross-Section Entering the Stark Width
- N.B. In addition, if results of the Gailitis resonances between J-levels would be needed, Equations (5), (7) and (8), must be modified. For that, an additional step, again using standard angular algebra calculations, has to be conducted. We only give the result there: the and the L and which enter Equation (8) must be simply replaced by the , J and .
5. Examples of Results
5.1. Case between J-Levels: Example of the Two Fine Structure Components of P XIII 3s-3p
6. Conclusions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Baranger, M. General Impact Theory of Pressure Broadening. Phys. Rev. A 1958, 112, 855–865. [Google Scholar] [CrossRef]
- Sahal-Bréchot, S. Impact theory of the broadening and shift of spectral lines due to electrons and ions in a plasma. Astron. Astrophys. 1969, 1, 91–123. [Google Scholar]
- Sahal-Bréchot, S. Impact theory of the broadening and shift of spectral lines due to electrons and ions in a plasma (continued). Astron. Astrophys. 1969, 2, 322–354. [Google Scholar]
- Sahal-Bréchot, S. Stark Broadening of Isolated Lines in the Impact Approximation. Astron. Astrophys. 1974, 35, 319–321. [Google Scholar]
- Fleurier, C.; Sahal-Bréchot, S.; Chapelle, J. Stark profiles of some ion lines of alkaline earth elements. J. Quant. Spectrosc. Radiat. Transf. 1977, 17, 595–603. [Google Scholar] [CrossRef]
- Sahal-Bréchot, S.; Dimitrijević, M.S.; Ben Nessib, N. Widths and shifts of isolated lines of neutral and ionized atoms perturbed by collisions with electrons and ions: An outline of the semiclassical-perturbation (SCP) method and of the approximations used for the calculations. Atoms 2014, 17, 595–603. [Google Scholar] [CrossRef] [Green Version]
- Sahal-Bréchot, S.; Segré, E.R.A. Semi-classical calculations of electron and ion collisional broadening of the strongest U.V. ionic lines of astrophysical interest (C II/III/IV; N II/III/V; O VI; Si II/III/IV and S III/IV/VI). Astron. Astrophys. 1971, 13, 161–168. [Google Scholar]
- STARK-B. Available online: http://stark-b.obspm.fr (accessed on 30 April 2021).
- Hamdi, R.; Ben, N.N.; Sahal-Bréchot, S.; Dimitrijević, M.S. Stark broadening of Fe V spectral lines: 4s-4p transitions. Mon. Not. R. Astron. Soc. 2021, 504, 1320–1330. [Google Scholar] [CrossRef]
- Alexiou, S.; Dimitrijević, M.S.; Sahal-Bréchot, S.; Stambulchik, E.; Duan, B.; González, H.; Gigosos, M. The Second Workshop on Lineshape Code Comparison: Isolated Lines. Atoms 2014, 2, 157–177. [Google Scholar] [CrossRef] [Green Version]
- Sahal-Bréchot, S.; Stambulchik, E.; Dimitrijević, M.S.; Alexiou, S.; Duan, B.; Bommier, V. Third and Fourth Workshops on Spectral Line Shapes in Plasma Code Comparison: Isolated Lines. Atoms 2018, 6, 30. [Google Scholar] [CrossRef] [Green Version]
- Elabidi, H.; Sahal-Bréchot, S.; Ben, N.N. Quantum Stark broadening of 3s-3p spectral lines in Li-like ions; Z-scaling and comparison with semi-classical perturbation theory. Eur. Phys. J. D 2009, 54, 51–54. [Google Scholar] [CrossRef]
- Gailitis, M. Behavior of cross-sections near threshold of a new reaction in the case of a Coulomb attraction field. Soviet Phys. JETP 1963, 17, 1328–1332. [Google Scholar]
- Seaton, M.J. Quantum defect theory. VII. Analysis of resonance structures. J. Phys. B (Atom. Molec. Phys.) 1969, 2, 5–11. [Google Scholar] [CrossRef]
- Petrini, D. The electron excitation rate of the green coronal line 5303 Å. Astron. Astrophys. 1970, 9, 392–404. [Google Scholar]
- Malinovsky, M. New calculations of atomic data concerning E.U.V. lines of O V. Astron. Astrophys. 1975, 43, 101–110. [Google Scholar]
- Sahal-Bréchot, S.; Bommier, V. Collisional line broadening and collisional depolarization of spectral lines: Similarities and differences. In Solar Polarization 8; ASP Conference Series; Belluzi, R., Casini, M., Romolli, M., Trujillo Bueno, J., Eds.; Astronomical Society of the Pacific: San Francisco, CA, USA, 2019; Volume 526, pp. 35–42. [Google Scholar]
- Sahal-Bréchot, S.; Dimitrijević, M.S.; Ben Nessib, N. Comparison and comments on electron and ion impact profiles of spectral lines. Open Astron. 2011, 20, 523–530. [Google Scholar] [CrossRef] [Green Version]
- Bely, O. Line broadening theory for positive ions. Phys. Rev. A 1969, 185, 79–82. [Google Scholar] [CrossRef]
- Malinovsky-Arduini, M. Analyse d’un Spectre X-UV de la Couronne Solaire: Détermination des Abondances et Interprétation des Intensités Mesurées, étude Critique des Méthodes Théoriques de Physique Atomique Utilisées Pour Cette Interprétation (in French, English Translation: Solar Corona X-UV Spectrum Analysis: Abundances Determinations and Measured Intensities Interpretation, Critical Study of the Methods Used for this Interpretation). Ph.D. Thesis, Paris 7 University, Paris, France, 1975. [Google Scholar]
- Catalogue Sudoc. Available online: http://www.sudoc.fr/042075696 (accessed on 16 September 2020).
- Larbi-Terzi, N.; Sahal-Bréchot, S.; Ben, N.N.; Dimitrijević, M.S. Stark broadening calculations of singly ionized carbon spectral lines. Mon. Not. R. Astron. Soc. 2012, 423, 766–773. [Google Scholar] [CrossRef] [Green Version]
- Elabidi, H.; Sahal-Bréchot, S.; Dimitrijević, M.S. Quantum Stark broadening of Ar XV lines. Strong collision and quadrupolar contributions. Adv. Space Res. 2014, 54, 1184–1189. [Google Scholar] [CrossRef] [Green Version]
- Elabidi, H.; Sahal-Bréchot, S.; Dimitrijević, M.S.; Ben Nessib, N. Quantum Stark broadening data for the C IV, N V, O VI, F VII, and Ne VIII resonance doublets. Mon. Not. R. Astron. Soc. 2011, 417, 2624–2630. [Google Scholar] [CrossRef] [Green Version]
- Dimitrijević, M.S.; Sahal-Bréchot, S.; Bommier, V. Stark broadening of spectral lines of multicharged ions of astrophysical interest. I: C IV lines. Astron. Astrophys. Suppl. Ser. 1991, 89, 581–590. [Google Scholar]
T | |||
Full width at half maximum | |||
Inelastic collision contribution from the upper level | |||
Inelastic collision contribution from the lower level | |||
Feshbach resonances contribution from the upper level | |||
Feshbach resonances contribution from the lower level | |||
Elastic collisions contribution (without resonances) |
T | |||
Full width at half maximum | |||
Inelastic collision contribution from the upper level | |||
Inelastic collision contribution from the lower level | |||
Feshbach resonances contribution from the upper level | |||
Feshbach resonances contribution from the lower level | |||
Elastic collisions contribution (without resonances) |
T | |||
Full width at half maximum | |||
Inelastic collision contribution from the upper level | |||
Inelastic collision contribution from the lower level | |||
Feshbach resonances contribution from the upper level | |||
Feshbach resonances contribution from the lower level | |||
Elastic collisions contribution (without resonances) |
T | |||
Full width at half maximum | |||
Inelastic collision contribution from the upper level | |||
Inelastic collision contribution from the lower level | |||
Feshbach resonances contribution from the upper level | |||
Feshbach resonances contribution from the lower level | |||
Elastic collisions contribution (without resonances) |
T | |||
Full width at half maximum | |||
Inelastic collision contribution from the upper level | |||
Inelastic collision contribution from the lower level | |||
Feshbach resonances contribution from the upper level | |||
Feshbach resonances contribution from the lower level | |||
Elastic collisions contribution (without resonances) |
T | |||
Full width at half maximum | |||
Inelastic collision contribution from the upper level | |||
Inelastic collision contribution from the lower level | |||
Feshbach resonances contribution from the upper level | |||
Feshbach resonances contribution from the lower level | |||
Elastic collisions contribution (without resonances) |
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Sahal-Bréchot, S. The Semiclassical Limit of the Gailitis Formula Applied to Electron Impact Broadening of Spectral Lines of Ionized Atoms. Atoms 2021, 9, 29. https://doi.org/10.3390/atoms9020029
Sahal-Bréchot S. The Semiclassical Limit of the Gailitis Formula Applied to Electron Impact Broadening of Spectral Lines of Ionized Atoms. Atoms. 2021; 9(2):29. https://doi.org/10.3390/atoms9020029
Chicago/Turabian StyleSahal-Bréchot, Sylvie. 2021. "The Semiclassical Limit of the Gailitis Formula Applied to Electron Impact Broadening of Spectral Lines of Ionized Atoms" Atoms 9, no. 2: 29. https://doi.org/10.3390/atoms9020029
APA StyleSahal-Bréchot, S. (2021). The Semiclassical Limit of the Gailitis Formula Applied to Electron Impact Broadening of Spectral Lines of Ionized Atoms. Atoms, 9(2), 29. https://doi.org/10.3390/atoms9020029