RAS PhysicsЖурнал экспериментальной и теоретической физики Journal of Experimental and Theoretical Physics

  • ISSN (Print) 0044-4510
  • ISSN (Online) 3034-641X

EVALUATION OF THE ROTATING WAVE APPROXIMATION INFLUENCE ON POLARIZATION SPECTRA OF A TWO-LEVEL SYSTEM IN A POLYCHROMATIC FIELD

PII
10.31857/S0044451024110014-1
DOI
10.31857/S0044451024110014
Publication type
Article
Status
Published
Authors
Volume/ Edition
Volume 166 / Issue number 5
Pages
575-587
Abstract
Polarization spectra of a two-level system in a polychromatic field were obtained in two cases: using the rotating wave approximation and without using this approximation. The obtained spectra were compared using two indicators: the average deviation across the entire frequency range and the deviation at the transition frequency. Both indicators allow quantitative assessment of the distortion in polarization spectra introduced by the application of the rotating wave approximation. The dependencies of the above indicators on key model parameters were obtained – on the central frequency, detuning, and spectral width of the applied polychromatic field. The obtained dependencies allow evaluating the applicability limits of the rotating wave approximation for a given level of acceptable distortions in the polarization spectrum.
Keywords
Date of publication
17.09.2025
Year of publication
2025
Number of purchasers
0
Views
65

References

  1. 1. G. S. Agarwal, Phys.Rev.A 4, 1778 (1971).
  2. 2. D. F. Walls, Phys. Lett.A 42, 217 (1972).
  3. 3. F. Bloch and A. Siegert, Phys.Rev. 57, 522 (1940).
  4. 4. I. I. Rabi, Phys.Rev. 51, 652 (1937).
  5. 5. H. Haken, Handbuch der Physik, Springer, Berlin (1970), Vol.XXV/2C.
  6. 6. L.E. Estes, T.H. Keil, and L.M. Narducci, Phys. Rev. 175, 286 (1968).
  7. 7. M. S. Conradi, S.A. Altobelli, S. J. Sowko et al., J.Magn.Res. 288, 23 (2018).
  8. 8. E. Jericha, C. G¨osselsberger, H. Abele et al., Sci.Rep. 10, 5815 (2020).
  9. 9. E.T. Jaynes and F.W. Cummings, Proc. IEEE 51, 89 (1963).
  10. 10. W.E. Lamb, Jr., Phys.Rev. 105, 559 (1957).
  11. 11. W.E. Lamb, Jr., in Quantum Optics and Electronics, Gordon and Breach, New York (1965), p. 329.
  12. 12. C.Tserkezis, A. I. Fern´andez-Dom´ınguez, P.A.D.Gon,calves et al., Rep.Prog. Phys. 83, 082401 (2020).
  13. 13. I. Maldonado, J. Villavicencio, L.D. Contreras-Pulido, E. Cota, and J.A. Maytorena, Phys.Rev.B 97, 19531 (2018).
  14. 14. G. Rastelli and M. Governale, Phys.Rev.B 100, 085435 (2019).
  15. 15. S. Huber, M. Buchhold, J. Schmiedmayer, and S. Diehl, Phys.Rev.A 97, 043611 (2018).
  16. 16. C. Jirauschek, M. Riesch, and P. Tzenov, Adv. Theory Simul. 2, 1900018 (2019).
  17. 17. А. Г. Антипов, С.А. Пулькин, А.С. Сумароков и др., Опт. и спектр. 118, 977 (2015) [A.G. Antipov, S.A. Pulkin, A. S. Sumarokov et al., Opt. Spectr. 118, 945 (2015)].
  18. 18. T. Armon and L. Friedland, Phys.Rev.A 102, 052817 (2020).
  19. 19. A.G. Antipov, A.A. Kalinichev, S.A. Pulkin et al., J. Phys.: Conf. Ser. 735, 012029 (2016).
  20. 20. А. Г. Антипов, Н.И. Матвеева, С.А. Пулькин, С. В. Уварова, Опт. и спектр. 121, 947 (2016) [A.G. Antipov, N. I. Matveeva, S.A. Pul’kin, and S.V. Uvarova, Opt. Spectr. 121, 879 (2016)].
QR
Translate

Индексирование

Scopus

Scopus

Scopus

Crossref

Scopus

Higher Attestation Commission

At the Ministry of Education and Science of the Russian Federation

Scopus

Scientific Electronic Library