AbstractAbout AuthorsReferences
The development and improvement of interferometry methods can currently be characterized by a transition to a higher quality level, primarily related to the use of fiber-optic technologies and an element base. The object of the study is an optoelectronic system of a fiber-optic interferometer. The subject of the study is the amplitude-frequency characteristic of the phase modulator of a fiber-optic interferometer. The results of a study of the amplitude-frequency characteristics of a Mach-Zehnder fiber-optic interferometer with a piezoelectric phase modulator are presented. The design and testing methodology of a phase modulator as part of an optoelectronic system of a Mach-Zehnder fiber interferometer have been developed.
V.I. ZAIKOV, Candidate of Sciences (Engineering) (This email address is being protected from spambots. You need JavaScript enabled to view it.),
A.O. POLTAVTSEVA, Engineer (This email address is being protected from spambots. You need JavaScript enabled to view it.)
A.O. POLTAVTSEVA, Engineer (This email address is being protected from spambots. You need JavaScript enabled to view it.)
Komsomolsk-on-Amur State University (27, Lenin Avenue, Komsomolsk-on-Amur, 681013, Russian Federation)
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7. Parfenov M.V., Varlamov A.V., Ilichev I.V., Usikova A.A., Zadiranov Yu.M., Tronev A.V., Agruzov P.M., Shamrai A.V. Ultra-wideband phase modulator based on a multimode channel waveguide on thin-film lithium niobate. Pisma v Zhurnal Tekhnicheskoi Fiziki. 2025. No. 8 (51), pp. 25–29. (In Russian). EDN: PNPQAM
8. Shulepova A.V., Shulepov V.A., Strigalev V.E. A study of the influence of the control voltage of a lithium niobate-based phase modulator on the magnitude of parasitic amplitude modulation and the distribution of optical radiation intensity at the ends of channel waveguides. Nauchno-Tekhnicheskii Vestnik Informatsionnikh Tekhnologii, Mekhaniki i Optiki. 2024. No. 3 (24), pp. 357–365. (In Russian). EDN: OVKXXG.
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9. Vostrikov Ye.V., Umnova A.V., Aleinik A.S., Pogudin G.K., Strigalev V.E., Meshkovskii I.K. Application of additional high-frequency modulation to reduce influence of residual amplitude modulation LiNbO3 phase modulator on fiber optical gyroscope signal. Nauchno-Tekhnicheskii Vestnik Informatsionnikh Tekhnologii, Mekhaniki i Optiki. 2022. No. 5 (22), pp. 866–872. (In Russian). EDN: WJKVYI. http://doi.org/10.17586/2226-1494-2022-22-5-866-872
10. Huang L., Li Y., Zhao Sh., Lin T., Li X., Vang G., Zhu Z. Functional flexible photonics-assisted frequency measurement based on combination of stimulated of Mandelstam–Brillouin scattering and a Mach–Zehnder interferometer. Kvantovaya Elektronika. 2021. No. 12 (51), pp. 1135–1143. (In Russian). EDN: JYKNGT
11. Frolov A.V., Shvets A.N., Musihin Yu.F. Аpplication of modified sigma-delta modulator for digital signals frequency division. Uchenie Zapiski of the Komsomolsk-on-Amur State Technical University. 2025. No. 3 (83), рр. 63–67. (In Russian). EDN: LFZCKR
2. Kuznetsov I.V., Perin A.S. Mathematical modeling of the characteristics of an electro-optical modulator in a Mach–Zehnder interferometer configuration based on thin lithium niobate films. Opticheskii Zhurnal. 2023. No. 2 (90), pp. 68–77. (In Russian). EDN: ACBXMG. http://doi.org/10.17586/1023-5086-2023-90-02-68-77
3. Moshkov V.A., Martishkin A.A., Sadovnikov A.V. A single-channel magnondemultiplexer based on a coupled transverse-limited waveguide and a Mach–Zehnder interferometer. Radiotekhnika i Elektronika. 2025. No. 4 (70), pp. 412–417. (In Russian). EDN: FRRQXQ
4. Parfyonov N.M., Chemodanov V.B., Yermilina O.V. Fiber-optic sensors based on optical interferometers. Aviakosmicheskoe Priborostroenie. 2022. No. 4, pp. 44–56. (In Russian). EDN: BTVNZY.
http://doi.org/10.25791/aviakosmos.4.2022.1276
5. Petrov V.M., Agruzov P.M., Lebedev V.V., Ilichev I.V., Shamrai A.V. Broadband integrated optical modulators: achievements and development prospects. Uspekhi Fizicheskikh Nauk. 2021. No. 7 (191), pp. 760–780. (In Russian). EDN: OZMXKE. http://doi.org/10.3367/UFNr.2020.11.038871
6. Luchinin A.S., Maligin I.V. Measuring phase and amplitude noise in semiconductor lasers. Measurement methodology. Calibration. Results. Zhurnal Radioelektroniki. 2023. No. 8. (In Russian). EDN: LMIFGW. http://doi.org/10.30898/1684-1719.2023.8.2
7. Parfenov M.V., Varlamov A.V., Ilichev I.V., Usikova A.A., Zadiranov Yu.M., Tronev A.V., Agruzov P.M., Shamrai A.V. Ultra-wideband phase modulator based on a multimode channel waveguide on thin-film lithium niobate. Pisma v Zhurnal Tekhnicheskoi Fiziki. 2025. No. 8 (51), pp. 25–29. (In Russian). EDN: PNPQAM
8. Shulepova A.V., Shulepov V.A., Strigalev V.E. A study of the influence of the control voltage of a lithium niobate-based phase modulator on the magnitude of parasitic amplitude modulation and the distribution of optical radiation intensity at the ends of channel waveguides. Nauchno-Tekhnicheskii Vestnik Informatsionnikh Tekhnologii, Mekhaniki i Optiki. 2024. No. 3 (24), pp. 357–365. (In Russian). EDN: OVKXXG.
http://doi.org/10.17586/2226-1494-2024-24-3-357-365
9. Vostrikov Ye.V., Umnova A.V., Aleinik A.S., Pogudin G.K., Strigalev V.E., Meshkovskii I.K. Application of additional high-frequency modulation to reduce influence of residual amplitude modulation LiNbO3 phase modulator on fiber optical gyroscope signal. Nauchno-Tekhnicheskii Vestnik Informatsionnikh Tekhnologii, Mekhaniki i Optiki. 2022. No. 5 (22), pp. 866–872. (In Russian). EDN: WJKVYI. http://doi.org/10.17586/2226-1494-2022-22-5-866-872
10. Huang L., Li Y., Zhao Sh., Lin T., Li X., Vang G., Zhu Z. Functional flexible photonics-assisted frequency measurement based on combination of stimulated of Mandelstam–Brillouin scattering and a Mach–Zehnder interferometer. Kvantovaya Elektronika. 2021. No. 12 (51), pp. 1135–1143. (In Russian). EDN: JYKNGT
11. Frolov A.V., Shvets A.N., Musihin Yu.F. Аpplication of modified sigma-delta modulator for digital signals frequency division. Uchenie Zapiski of the Komsomolsk-on-Amur State Technical University. 2025. No. 3 (83), рр. 63–67. (In Russian). EDN: LFZCKR
For citation: Zaikov V.I., Poltavtseva A.O. Fiber-optic Mach-Zehnder interferometer with piezoelectric type phase modulator. Zhilishchnoe Stroitel'stvo [Housing Construction]. 2025. No. 12, pp. 23–29. (In Russian). https://doi.org/10.31659/0044-4472-2025-12-23-29
