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ISSN: 1023-5086

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ISSN: 1023-5086

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Opticheskii Zhurnal

A full-text English translation of the journal is published by Optica Publishing Group under the title “Journal of Optical Technology”

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УДК: 535.14

Exciton channels for multiphoton interband transitions in crystals

For Russian citation (Opticheskii Zhurnal):

Перлин Е.Ю., Бондарев М.А. Экситонные каналы многофотонных межзонных переходов в кристаллах // Оптический журнал. 2016. Т. 83. № 10. С. 3–6.

 

Perlin E.Yu., Bondarev M.A. Exciton channels for multiphoton interband transitions in crystals [in Russian] // Opticheskii Zhurnal. 2016. V. 83. № 10. P. 3–6.

For citation (Journal of Optical Technology):

E. Yu. Perlin and M. A. Bondarev, "Exciton channels for multiphoton interband transitions in crystals," Journal of Optical Technology. 83(10), 583-585 (2016). https://doi.org/10.1364/JOT.83.000583

Abstract:

We discuss the contribution from channels with Wannier–Mott exciton states as intermediate virtual states. We describe the conditions under which the exciton channels make a much greater contribution compared to that of “ordinary” interband channels.

Keywords:

multiphoton transitions, Wannier–Mott excitons, high-level excitation, perturbation theory

Acknowledgements:

Russian Federation Government (Subsidy 074-U01, 3.821.2014/K); Russian Foundation for Basic Research (RFBR) (16-32-00102).

OCIS codes: 190.4180, 190.7220, 190.4720

References:

1. R. Braunstein and N. Ockman, “Optical double-photon absorption in CdS,” Phys. Rev. 134(2A), A499–A507 (1964).
2. J. Hopfield and J. Worlock, “Two-quantum absorption spectrum of KI and CsI,” Phys. Rev. 137(5A), A1455–A1464 (1965).
3. A. R. Hassan, “Two-photon interband transitions at critical points in semiconductors,” Nuovo Cimento B 70, 21–38 (1970).
4. L. V. Keldysh, “Ionization in the field of a strong electromagnetic wave,” Sov. Phys. JETP 20(5), 1307–1314 (1965) [Zh. Eksp. Teor. Fiz. 47(5), 1945–1957 (1964)].
5. Yu. A. Bychkov and A. M. Dykhne, “Breakdown in semiconductors in an alternating electric field,” Sov. Phys. JETP 31(5), 928–932 (1970) [Zh. Eksp. Teor. Fiz. 58(5), 1734–1743 (1970)].

6. V. A. Kovarskii and E. Y. Perlin, “Multiphoton interband optical transitions in crystals,” Phys. Status Solidi B 45, 47–56 (1971).
7. J. H. Yee, “Four-photon transition in semiconductors,” Phys. Rev. B 3(1), 355–360 (1971).
8. S. D. Ganichev, S. A. Emel’yanov, E. L. Ivchenko, E. Yu. Perlin, Ya. V. Terent’ev, and D. Yaroshetskiı˘, “Multiphoton absorption in semiconductors at submillimeter wavelengths,” Sov. Phys. JETP 64(4), 729–737 (1986) [Zh. Eksp. Teor. Fiz. 91(4), 1233–1248 (1986)].
9. H. Minasian and S. Avetisian, “Multiphoton absorption of intense electromagnetic laser radiation in narrow-gap semiconductors,” Phys. Rev. B 34(2), 963–966 (1986).
10. F. Pradère, A. Mysyrowicz, K. Rustagi, and D. Trivich, “Two-photon absorption in Cu 2 O due to transitions to higher-energy excitons,” Phys. Rev. B 4(10), 3570–3572 (1971).
11. A. I. Bobrysheva, S. A. Moskalenko, and M. I. Shmiglyuk, “Calculation of the oscillator strength of a two-photon absorption transition to an exciton state,” Sov. Phys. Semicond. 1(10), 1224–1230 (1967) [Fiz. Tekh. Poluprovodn. 1(10), 1469–1477 (1967)].
12. G. Mahan, “Theory of two-photon spectroscopy in solids,” Phys. Rev. 170(3), 825–838 (1968).
13. V. I. Bredikhin and V. N. Genkin, “Role of excitation states during two-quantum absorption in semiconductors,” Sov. Phys. Solid State 11(8), 1871–1874 (1970) [Fiz. Tverd. Tela 11(8), 2317–2321 (1969)].
14. E. Yu. Perlin, A. V. Fedorov, and M. B. Kashevnik, “Multiphoton interband absorption with participation of free carriers in crystals,” Sov. Phys. JETP 58(4), 787–791 (1983) [Zh. Eksp. Teor. Fiz. 85(4), 1357–1365 (1983)].
15. A. M. Danishevskiı˘, E. Yu. Perlin, and A. V. Fedorov, “Multiphonon interband absorption involving free electrons and phonons in n-type InAs,” Sov. Phys. JETP 66(4), 747–753 (1987) [Zh. Eksp. Teor. Fiz. 93(4), 1319–1328 (1987)].
16. E. Yu. Perlin, A. V. Ivanov, and R. S. Levitskiı˘, “Cascade avalanche production of electron–hole pairs in type II quantum wells,” J. Exp. Theor. Phys. 96(3), 543–554 (2003) [Zh. Eksp. Teor. Fiz. 123(3), 612–624 (2003)].
17. E. Yu. Perlin, A. V. Ivanov, and R. S. Levitskiı˘, “Prebreakdown generation of nonequilibrium electron–hole pairs: the multiphoton avalanche effect,” J. Exp. Theor. Phys. 101, 357–366 (2005). [Zh. Eksp. Teor. Fiz. 128(2(8)), 411–421 (2005)].
18. E. Yu. Perlin, A. V. Ivanov, and A. A. Popov, “Interband phototransitions involving free electrons: I. Crystals with a direct band gap,” Opt. Spectrosc. 113(4), 376–382 (2012) [Opt. Spektrosk. 113(4), 418–425 (2012)].
19. E. Yu. Perlin, A. V. Ivanov, and A. A. Popov, “Interband phototransitions involving free electrons: II. Crystals with an indirect band gap,” Opt. Spectrosc. 113(4), 383–387 (2012) [Opt. Spektrosk. 113(4), 426–430 (2012)].
20. E. Yu. Perlin, A. V. Ivanov, and A. A. Popov, “Interband phototransitions involving free electrons: III. Transmission of light through crystals,” Opt. Spectrosc. 115(5), 739–744 (2013) [Opt. Spektrosk. 115(5), 830–935 (2013)].
21. O. Madelung, Semiconductors: Group IV Elements and III-V Compounds (Springer Verlag, Berlin–New York, 1991).
22. E. Yu. Perlin, Sov. Phys. Solid State 15(1), 44 (1973) [Fiz. Tverd. Tela 15(1), 66–74 (1973).
23. E. Yu. Perlin, “Triple optical resonance in crystals,” Opt. Spectrosc. 41(2), 153–158 (1976) [Opt. Spektrosk. 41(2), 263–272 (1976)].
24. E. Yu. Perlin, “Optical Stark effect on excitons in a quantum well: the photo-induced Fano resonance,” Opt. Spectrosc. 83(2), 243–250 (1997) [Opt. Spektrosk. 83(2), 243–250 (1997)].