17. A.A. Bortsov, V.V. Grigoriantz, Y.B. Il’in, Frequency tuning in a self-excited oscillator with a
fiber-optic delay line. Telecommun. Radio Eng. 44(4), 74–77 (1989)
18. T.V. Babkina, V.V. Grigoriantz, Y.B. Il’in, V.A. Prokof’iev, LASER APPLICATIONS AND
OTHER TOPICS IN QUANTUM ELECTRONICS: Use of a laser oscillator heterodyne
interferometer as an optical sensor of microdisplacements. Soviet J. Quantum Electron. 21
(12), 1384–1387 (1991)
19. T.V. Babkina, V.V. Grigoriantz, Y.B. Il’in, V.A. Prokof’ev, Self-sustained operation of a laser
oscillating Mach-Zehnder interferometer. Soviet J. Quantum Electron. 21(2) (1991)
20. A.A. Bortsov, Y.B. Il’in, et al., Device for the functional transformation of acoustic pressure
into frequency. Patent USSR 1,538,265, 1988,DOI: 10.13140/RG.2.2.10736.07688
21. Alexander A. Bortsov, Y.B. Il’in,Opto-electronic oscillator ,Generator of frequency-modulated signals, 2006-08-20, Patent RU2282302C1,2006, DOI: 10.13140/RG.2.2.29610.44488
22. A.A. Bortsov, Phase-frequency and amplitude-frequency characteristics of a mesa-adjusted
laser diode with a modulation frequency band of up to 12 GHz. Radio Eng. (Radiotekhnika,
Moscow),vol.9, 43–47 (2006),DOI: 10.13140/RG.2.2.18285.82408
23. A.A. Bortsov, Y.B. Il’in, Laser spectral line widening effect on RF phase and amplitude noises
of an optoelectronic oscillator OEO. J. Radio Eng. (2), 21-31 (2010), DOI: 10.13140/
RG.2.2.35665.07527
24. A.A. Bortsov, The Influence of the Quality of Laser Resonator to Microwave Phase Noise in
opto-electronic oscillator, Electromagnetic Waves and Electronic Systems,(Radiotekhnika,
Moscow), vol.11, 48-55(2012),DOI:10.13140/RG.2.2.28352.15361
25. R.A. Woode, E.N. Ivanov, M.E. Tobar, Application of the interferometric noise measurement
technique for the study of intrinsic fluctuations in microwave isolators. Meas. Sci. Technol.,
vol.9 ,1593–1599 (1998)
26. G.J. Dick, D.G. Santiago, R.T. Wang, Temperature compensated sapphire resonator for ultrastable oscillator capability at temperatures above 77 kelvin. IEEE Trans. Microwave Theory
Tech. 42(7), 19–25 (2000)
27. G.J. Dick, R.T. Wang, Stability and phase noise tests of two cryo-cooled sapphire oscillators.
TMO Progress Report, vol. 42-1542 (1999), рp. 34–45
28. G.J. Dick, R.T. Wang, Design of a cryocooled sapphire oscillator for the cassini Ka-Band
experiment. TMO Progress Report, vol. 42-134 (1998), pp. 176–189
29. P. Stockwell, C. McNeilage, M. Mossammaparast, D.M. Green, 3-Axis vibration performance
of a compact sapphire microwave oscillator. IEEE Trans. Microwave Theory Tech. 46(8),
123–199 (2002)
30. K.L. Ribeiro, E.N. Ivanov, D.G. Blair and etc, A proposal for improving the noise floor of the
gravitational wave antenna Niobè,Classical and Quantum Gravity ,vol.19 , 1967–1972 (2002)
31. V.G. Thomas, N. Daneu, et al., The internal structure of hydrothermally grown leucosapphire
crystals. CrystEngComm 21(5), 1122–1129 (2019)
32. V.S. Ilchenko, M.L. Gorodetsky, Y.X. Steve, L. Maleki, Microtorus: a high finesse microcavity
with whispering-gallery modes. IEEE Photon. Technol. Lett. 26(5), 256–258 (2001)
33. K.R. Hiremath, V.N. Astratov, Perturbations of whispering gallery modes by nanoparticles
embedded in microcavities. Opt. Exp. 16(8), 5421–5426 (2008)
34. G.S. Murugan, J.S. Wilkinson, M.N. Zervas, Selective excitation of whispering gallery modes
in a novel bottle microresonato. Opt. Exp. 17(14), 11916–11925 (2009)
35. K.J. Vahala, Optical microcavities. Nature 424, 839–846 (2003)
36. L. Maleki, V.S. Ilchenko, A.A. Savchenkov, A.B. Matsko, Crystalline whispering gallery mode
resonators in optics and photonics, in Practical applications of microresonators in optics and
photonics, ed. by A. B. Matsko, (CRC Press, New York, 2009)
37. L. Stolpner, S. Lee, S. Li, A. Mehnert, P. Mols, S. Siala. Low noise planar external cavity laser
for interferometric fiber optic sensors, in Proceedings of SPIE 7004, 19th International Conference on Optical Fibre Sensors (2008), pp. 700451–700457
38. K. Numata, J. Camp, M.A. Krainak, L. Stolpner, Performance of planar-waveguide external
cavity laser for precision measurements. Opt. Exp. 18(22), 22781–22788 (2010)
68
2 Nanostructural Optoelectronic Oscillators with the Fiber-Optical Delay Line
fiber-optic delay line. Telecommun. Radio Eng. 44(4), 74–77 (1989)
18. T.V. Babkina, V.V. Grigoriantz, Y.B. Il’in, V.A. Prokof’iev, LASER APPLICATIONS AND
OTHER TOPICS IN QUANTUM ELECTRONICS: Use of a laser oscillator heterodyne
interferometer as an optical sensor of microdisplacements. Soviet J. Quantum Electron. 21
(12), 1384–1387 (1991)
19. T.V. Babkina, V.V. Grigoriantz, Y.B. Il’in, V.A. Prokof’ev, Self-sustained operation of a laser
oscillating Mach-Zehnder interferometer. Soviet J. Quantum Electron. 21(2) (1991)
20. A.A. Bortsov, Y.B. Il’in, et al., Device for the functional transformation of acoustic pressure
into frequency. Patent USSR 1,538,265, 1988,DOI: 10.13140/RG.2.2.10736.07688
21. Alexander A. Bortsov, Y.B. Il’in,Opto-electronic oscillator ,Generator of frequency-modulated signals, 2006-08-20, Patent RU2282302C1,2006, DOI: 10.13140/RG.2.2.29610.44488
22. A.A. Bortsov, Phase-frequency and amplitude-frequency characteristics of a mesa-adjusted
laser diode with a modulation frequency band of up to 12 GHz. Radio Eng. (Radiotekhnika,
Moscow),vol.9, 43–47 (2006),DOI: 10.13140/RG.2.2.18285.82408
23. A.A. Bortsov, Y.B. Il’in, Laser spectral line widening effect on RF phase and amplitude noises
of an optoelectronic oscillator OEO. J. Radio Eng. (2), 21-31 (2010), DOI: 10.13140/
RG.2.2.35665.07527
24. A.A. Bortsov, The Influence of the Quality of Laser Resonator to Microwave Phase Noise in
opto-electronic oscillator, Electromagnetic Waves and Electronic Systems,(Radiotekhnika,
Moscow), vol.11, 48-55(2012),DOI:10.13140/RG.2.2.28352.15361
25. R.A. Woode, E.N. Ivanov, M.E. Tobar, Application of the interferometric noise measurement
technique for the study of intrinsic fluctuations in microwave isolators. Meas. Sci. Technol.,
vol.9 ,1593–1599 (1998)
26. G.J. Dick, D.G. Santiago, R.T. Wang, Temperature compensated sapphire resonator for ultrastable oscillator capability at temperatures above 77 kelvin. IEEE Trans. Microwave Theory
Tech. 42(7), 19–25 (2000)
27. G.J. Dick, R.T. Wang, Stability and phase noise tests of two cryo-cooled sapphire oscillators.
TMO Progress Report, vol. 42-1542 (1999), рp. 34–45
28. G.J. Dick, R.T. Wang, Design of a cryocooled sapphire oscillator for the cassini Ka-Band
experiment. TMO Progress Report, vol. 42-134 (1998), pp. 176–189
29. P. Stockwell, C. McNeilage, M. Mossammaparast, D.M. Green, 3-Axis vibration performance
of a compact sapphire microwave oscillator. IEEE Trans. Microwave Theory Tech. 46(8),
123–199 (2002)
30. K.L. Ribeiro, E.N. Ivanov, D.G. Blair and etc, A proposal for improving the noise floor of the
gravitational wave antenna Niobè,Classical and Quantum Gravity ,vol.19 , 1967–1972 (2002)
31. V.G. Thomas, N. Daneu, et al., The internal structure of hydrothermally grown leucosapphire
crystals. CrystEngComm 21(5), 1122–1129 (2019)
32. V.S. Ilchenko, M.L. Gorodetsky, Y.X. Steve, L. Maleki, Microtorus: a high finesse microcavity
with whispering-gallery modes. IEEE Photon. Technol. Lett. 26(5), 256–258 (2001)
33. K.R. Hiremath, V.N. Astratov, Perturbations of whispering gallery modes by nanoparticles
embedded in microcavities. Opt. Exp. 16(8), 5421–5426 (2008)
34. G.S. Murugan, J.S. Wilkinson, M.N. Zervas, Selective excitation of whispering gallery modes
in a novel bottle microresonato. Opt. Exp. 17(14), 11916–11925 (2009)
35. K.J. Vahala, Optical microcavities. Nature 424, 839–846 (2003)
36. L. Maleki, V.S. Ilchenko, A.A. Savchenkov, A.B. Matsko, Crystalline whispering gallery mode
resonators in optics and photonics, in Practical applications of microresonators in optics and
photonics, ed. by A. B. Matsko, (CRC Press, New York, 2009)
37. L. Stolpner, S. Lee, S. Li, A. Mehnert, P. Mols, S. Siala. Low noise planar external cavity laser
for interferometric fiber optic sensors, in Proceedings of SPIE 7004, 19th International Conference on Optical Fibre Sensors (2008), pp. 700451–700457
38. K. Numata, J. Camp, M.A. Krainak, L. Stolpner, Performance of planar-waveguide external
cavity laser for precision measurements. Opt. Exp. 18(22), 22781–22788 (2010)
68
2 Nanostructural Optoelectronic Oscillators with the Fiber-Optical Delay Line
