The Feshbach Resonances Applied to the Calculation of Stark Broadening of Ionized Spectral Lines: An Example of Interdisciplinary Research
Abstract
:1. Introduction
2. Historical Background: State of Knowledge at the End of the 1950s: Impact Electron Collisions Applied to Inelastic Cross-Sections and Spectral Line Stark Broadening of Ionized Atoms
2.1. Electron Impact (Stark) Broadening of Isolated Spectral Lines of Ionized Atoms
2.2. Ion–Electron Inelastic Cross-Sections at the End of the 1950s: State of the Art
2.3. The 1960s: First Quantum Close-Coupling Calculations of Ion–Electron Cross-Sections
3. Interdisciplinarity: Back and Forth Between Physics and Astrophysics
3.1. Development of Quantitative Solar Physics at the Beginning of the 1970s: Application of Feshbach Resonances with the Galitis Method for the Spectroscopic Diagnostics of Coronal Line Intensities
3.1.1. Case of the Green Line of Fe XIV 5303 Å
3.1.2. Case of EUV Lines of OV
3.2. Middle of the 1970s: Back from Solar Coronal Lines Intensities to Electron Impact Stark Widths of Lines of Ionized Atoms
4. Quantum Distorted Wave Approximation and Superstructure for the Atomic Structure Applied to Electron Impact Broadening in Intermediate Coupling
5. Comparison of Results Between the Quantum-Distorted Wave-Superstructure and the Semi-Classical Perturbation Calculations on the Example of Mo VI
- The relative contribution of the elastic (close) collisions decreases when the temperature increases.
- In general, the two results—QWDS and SCP—are not very different for the chosen temperature range; in fact, the relative error between them varies from 2 to 18%.
- QWDS and SCP results become much closer to each other when the elastic collisions become less important. This is because the elastic collision contributions are taken into account differently in the QWDS and the SCP methods.
- As expected, the contribution of Feshbach resonances decreases when the temperature increases for the two calculations (QWDS and SCP).
- Even the Feshbach resonances have the same behavior with temperature for the two formalisms; their contributions (columns 5 and 6) are much more important for the quantum calculations than for the semi-classical ones. This remains unexplained and requires further investigations.
- The last column (column 7) shows that the relative contribution of the elastic collisions to the SCP full width is important, which is expected because the chosen temperatures are not very high.
- At low temperatures, the QWDS widths are higher than the SCP ones. However, when the temperature increases, the elastic collisions and Feshbach contributions decrease, and the SCP results become higher. This conclusion confirms that the difference between the two formalisms comes principally from the evaluation of these contributions to the full width. This requires further investigations which are beyond the scope of the present paper. However, the existing comparisons with laboratory measurements (3s–3p spectral lines of Li-like ions [13]) show that the SCP and QWDS results both agree with the experimental ones within 10–20%.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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T(K) | WQ (Å) | WSCP (Å) | WQ/WSCP | FeshbachQ/WQ | FeshbachSCP/WSCP | Elast/WSCP |
---|---|---|---|---|---|---|
50,000 | 0.0151 | 0.0136 | 1.107 | 0.857 | 0.0933 | 0.518 |
75,000 | 0.0124 | 0.0114 | 1.089 | 0.713 | 0.0816 | 0.505 |
100,000 | 0.0108 | 0.0101 | 1.074 | 0.703 | 0.0708 | 0.497 |
200,000 | 0.0079 | 0.00774 | 1.020 | 0.356 | 0.0437 | 0.474 |
500,000 | 0.0051 | 0.00566 | 0.905 | 0.158 | 0.0183 | 0.444 |
750,000 | 0.0041 | 0.00501 | 0.824 | 0.107 | 0.0118 | 0.435 |
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Sahal-Bréchot, S.; Elabidi, H. The Feshbach Resonances Applied to the Calculation of Stark Broadening of Ionized Spectral Lines: An Example of Interdisciplinary Research. Atoms 2025, 13, 7. https://doi.org/10.3390/atoms13010007
Sahal-Bréchot S, Elabidi H. The Feshbach Resonances Applied to the Calculation of Stark Broadening of Ionized Spectral Lines: An Example of Interdisciplinary Research. Atoms. 2025; 13(1):7. https://doi.org/10.3390/atoms13010007
Chicago/Turabian StyleSahal-Bréchot, Sylvie, and Haykel Elabidi. 2025. "The Feshbach Resonances Applied to the Calculation of Stark Broadening of Ionized Spectral Lines: An Example of Interdisciplinary Research" Atoms 13, no. 1: 7. https://doi.org/10.3390/atoms13010007
APA StyleSahal-Bréchot, S., & Elabidi, H. (2025). The Feshbach Resonances Applied to the Calculation of Stark Broadening of Ionized Spectral Lines: An Example of Interdisciplinary Research. Atoms, 13(1), 7. https://doi.org/10.3390/atoms13010007