Registration of phonon modes of a ZnGeP2 crystal using Raman spectroscopy | Izvestiya vuzov. Fizika. 2025. № 11. DOI: 10.17223/00213411/68/11/10

Registration of phonon modes of a ZnGeP2 crystal using Raman spectroscopy

Tetragonal ZnGeP2 crystals with crystallographic directions (100) and (001) have been studied using polarization-sensitive Raman spectroscopy. Graphs of the crystal Raman scattering intensities for the corresponding modes in polar coordinates are presented. Phonon frequencies in the center of the Brillouin zone were obtained. It was found that the experimental results are in good agreement with the theoretical data presented in the literature.

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Keywords

ZnGeP2, Raman scattering, crystal orientation, polarization, phonon modes

Authors

NameOrganizationE-mail
Knyazkova Anastasia I.V.E. Zuev Institute of Atmospheric Optics of the Siberian Branch of the Russian Academy of Sciencesknyazkova@iao.ru
Snegerev Mikhail S.Tomsk State Universitysnegerev@mail.tsu.ru
Vrazhnov Denis A.V.E. Zuev Institute of Atmospheric Optics of the Siberian Branch of the Russian Academy of Sciencesvda@iao.ru
Raspopin Georgy K.V.E. Zuev Institute of Atmospheric Optics of the Siberian Branch of the Russian Academy of SciencesRaspopinGK@mail.tsu.ru
Kistenev Yury V.V.E. Zuev Institute of Atmospheric Optics of the Siberian Branch of the Russian Academy of Sciencesyuk@iao.ru
Всего: 5

References

Romanovskii O.A. et al. // Opt. Laser Technol. - 2019. - V. 116. - P. 43-47.
Kistenev Y.V., Cuisset A., Romanovskii O.A., Zherdeva A.V. // Atmos. Ocean. Opt. - 2022. - V. 35. - No. S1. - P. S17-S29.
Qian C.P. et al. // Opt. Lett. - 2019. - V. 44. - No. 3. - P. 715-718.
Das S. // Opt. Quantum Electron. - 2019. - V. 51. - No. 3. - P. 70.
Shirakata S. // J. Appl. Phys. - 1999. - V. 85. - No. 6. - P. 3294-3300.
Tlali S. et al. // MRS Online Proceedings Library (OPL). - 1997. - V. 484. - P. 543.
Merlin R., Pinczuk A., Weber W.H. // Raman Scattering in Materials Science. - Berlin, Heidelberg: Springer, 2000. - P. 1-29.
Cheng J. et al. // J. Crystal Growth. - 2011. - V. 318. - No. 1. - P. 729-732.
Zhou J.F., Goovaerts E., Schoemaker D. // Phys. Rev. B. - 1984. - V. 29. - No. 10. - P. 5509.
Fontana M.D., Bourson P. // J. Appl. Phys. - 2012. - V. 123108. - No. 10.1063/1.4769869. - P. 112.
Pan X. et al. // Chin. Opt. Lett. - 2023. - V. 21. - No. 4. - P. 041604.
Yudin N.N. et al. // Quantum Electron. - 2021. - V. 51. - No. 4. - P. 306.
Zhang S.R. et al. // Indian J. Phys. - 2020. - V. 94. - No. 9. - P. 1335-1341.
Wei L. et al. // J. Appl. Phys. - 2013. - V. 114. - P. 23.
Ohrendorf F.W., Haeuseler H. // Cryst. Res. Technol.: J. Exp. Industrial Crystallogr. - 2000. - V. 35. - No. 5. - P. 569-578.
Bettini M., Miller A. // Phys. Status Solidi (b). - 1974. - V. 66. - No. 2. - P. 579-586.
 Registration of phonon modes of a ZnGeP<sub>2</sub> crystal using Raman spectroscopy | Izvestiya vuzov. Fizika. 2025. № 11. DOI: 10.17223/00213411/68/11/10

Registration of phonon modes of a ZnGeP2 crystal using Raman spectroscopy | Izvestiya vuzov. Fizika. 2025. № 11. DOI: 10.17223/00213411/68/11/10

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