Optimized frequency recovery of the satellite quantum signal
- Авторлар: Chernov A.N.1,2,3, Khmelev A.V.1,2,3, Kurochkin V.L.1,2,3,4
 - 
							Мекемелер: 
							
- Moscow Institute of Physics and Technology
 - International Center for Quantum Optics and Quantum Technologies
 - QSpace Technologies LLC
 - MISIS National University of Science and Technology
 
 - Шығарылым: Том 88, № 6 (2024)
 - Беттер: 975-980
 - Бөлім: Luminescence and Laser Physics
 - URL: https://transsyst.ru/0367-6765/article/view/654667
 - DOI: https://doi.org/10.31857/S0367676524060206
 - EDN: https://elibrary.ru/PFLRJW
 - ID: 654667
 
Дәйексөз келтіру
Аннотация
We developed the frequency recovery method of laser pulses necessary for synchronizing quantum states transmitted from a satellite and registered at a ground station. Experimental modeling of a quantum key distribution session between a satellite and a ground station is also considered. The data obtained during the experiment were used to test the method of recovering the repetition frequency.
Толық мәтін
Авторлар туралы
A. Chernov
Moscow Institute of Physics and Technology; International Center for Quantum Optics and Quantum Technologies; QSpace Technologies LLC
							Хат алмасуға жауапты Автор.
							Email: chernov.an@phystech.edu
				                					                																			                												                	Ресей, 							Dolgoprudny; Moscow; Moscow						
A. Khmelev
Moscow Institute of Physics and Technology; International Center for Quantum Optics and Quantum Technologies; QSpace Technologies LLC
														Email: chernov.an@phystech.edu
				                					                																			                												                	Ресей, 							Dolgoprudny; Moscow; Moscow						
V. Kurochkin
Moscow Institute of Physics and Technology; International Center for Quantum Optics and Quantum Technologies; QSpace Technologies LLC; MISIS National University of Science and Technology
														Email: chernov.an@phystech.edu
				                					                																			                												                	Ресей, 							Dolgoprudny; Moscow; Moscow; Moscow						
Әдебиет тізімі
- Wootters W.K., Zurek W.H. // Nature. 1982. V. 299. No. 5886. P. 802.
 - Курочкин В.Л., Кривякин Г.К., Зверев А.В. и др. // Изв. РАН. Сер. физ. 2016. Т. 80. № 1. С. 10; Kurochkin V.L., Krivyakin G.K., Zverev A.V. et al. // Bull. Russ. Acad. Sci. Phys. 2016. V. 80. No. 1. P. 5.
 - Курочкин В.Л., Неизвестный И.Г. // Изв. РАН. Сер. физ. 2015. Т. 79. № 2. С. 195; Kurochkin V.L., Neizvestnyj I.G. // Bull. Russ. Acad. Sci. Phys. 2015. V. 79. No. 2. P. 173.
 - Курочкин В.Л., Коляко А.В. // Изв. РАН. Сер. физ. 2016. Т. 80. № 1. С. 5; Kurochkin V.L., Kolyako A.V. // Bull. Russ. Acad. Sci. Phys. 2016. V. 80. No. 1. P. 1.
 - Хмелев А.В., Дуплинский А.В., Майборода В.Ф. и др. // Письма в ЖТФ. 2021. Т. 47. № 17. С. 46; Khmelev A.V., Duplinsky A.V., Mayboroda V.F. et al. // Tech. Phys. Lett. 2021. V. 47. No. 12. P. 858.
 - Azuma K., Economou S.E., Elkouss D. et al. // arXiv:2212.10820. 2022.
 - Liao S.K., Cai W.Q., Liu W.Y. et al. // Nature. 2017. V. 549. No. 7670. P. 43.
 - Wang C.Z., Li Y., Cai W.Q. et al. // Opt. Express. 2021. V. 29. No. 19. P. 29595.
 - Wang C., Li Y., Cai W. et al. // Appl. Opt. 2021. V. 60. No. 16. P. 4787.
 - Vallone G., Marangon D.G., Canale M. et al. // Phys. Rev. A. 2015. V. 91. No. 4. Art. No. 042320.
 - Bienfang J.C., Gross A.J., Mink A. et al. // Opt. Express. 2004. V. 12. No. 9. P. 2011.
 - Khmelev A.V., Ivchenko E.I., Miller A.V. et al. // Entropy. 2023. V. 25. No. 4. Art. No. 670.
 - https://docs.scipy.org/doc/scipy/reference/generated/scipy.integrate.cumulative_trapezoid.html
 
Қосымша файлдар
				
			
						
					
						
						
						






