Active Pointing System for the Transmission of Ultrastable Optical Frequency Signals through an Open-Air Link
- Authors: Legoshin A.D.1,2, Liskova K.A.1,2, Kudeyarov K.S.1, Vishnyakova G.A.1,2, Mironchuk E.S.1,2, Zhadnov N.O.1, Kryuchkov D.S.1, Khabarova K.Y.1,2, Kolachevskiy N.N.1,3
- 
							Affiliations: 
							- P.N. Lebedev Physical Institute, Russian Academy of Sciences
- Moscow Institute of Physics and Technology
- Russian Quantum Center
 
- Issue: Vol 164, No 2 (2023)
- Pages: 247-254
- Section: Articles
- URL: https://rjraap.com/0044-4510/article/view/653673
- DOI: https://doi.org/10.31857/S0044451023080114
- EDN: https://elibrary.ru/IBKLKP
- ID: 653673
Cite item
Abstract
An active pointing system has been developed and created for an atmospheric transfer link for ultrastable optical frequency signals. This system can significantly decrease the deviations of laser beam direction and ensure stable transmission under conditions of a moving reflector installed at the midpoint of the line. The results of testing the system confirm its high efficiency and potential for use under real conditions.
About the authors
A. D. Legoshin
P.N. Lebedev Physical Institute, Russian Academy of Sciences;Moscow Institute of Physics and Technology
														Email: legoshin.ad@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia;Dolgoprudny, Moscow oblast, 141701 Russia						
K. A. Liskova
P.N. Lebedev Physical Institute, Russian Academy of Sciences;Moscow Institute of Physics and Technology
														Email: Legoshin.AD@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia;Dolgoprudny, Moscow oblast, 141701 Russia						
K. S. Kudeyarov
P.N. Lebedev Physical Institute, Russian Academy of Sciences
														Email: Legoshin.AD@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia						
G. A. Vishnyakova
P.N. Lebedev Physical Institute, Russian Academy of Sciences;Moscow Institute of Physics and Technology
														Email: gulnarav7@gmail.com
				                					                																			                												                								Moscow, 119991 Russia;Dolgoprudny, Moscow oblast, 141701 Russia						
E. S. Mironchuk
P.N. Lebedev Physical Institute, Russian Academy of Sciences;Moscow Institute of Physics and Technology
														Email: Legoshin.AD@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia;Dolgoprudny, Moscow oblast, 141701 Russia						
N. O. Zhadnov
P.N. Lebedev Physical Institute, Russian Academy of Sciences
														Email: Legoshin.AD@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia						
D. S. Kryuchkov
P.N. Lebedev Physical Institute, Russian Academy of Sciences
														Email: Legoshin.AD@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia						
K. Yu. Khabarova
P.N. Lebedev Physical Institute, Russian Academy of Sciences;Moscow Institute of Physics and Technology
														Email: Legoshin.AD@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia;Dolgoprudny, Moscow oblast, 141701 Russia						
N. N. Kolachevskiy
P.N. Lebedev Physical Institute, Russian Academy of Sciences;Russian Quantum Center
							Author for correspondence.
							Email: Legoshin.AD@phystech.edu
				                					                																			                												                								Moscow, 119991 Russia;Moscow, 121205 Russia						
References
- E. Oelker, R. B. Hutson, C. J. Kennedy et al., Nat. Photon. 13, 714 (2019).
- A. Golovizin, E. Fedorova, D. Tregubov et al., Nat.Commun. 10, 1724 (2019).
- S. M. Brewer, J.-S. Chen, A. M. Hankin et al., Phys. Rev. Lett. 123, 033201 (2019).
- Д. В. Сутырин, О. И. Бердасов, С. Ю. Антропов и др., КЭ 49, 199 (2019).
- K. Khabarova, D. Kryuchkov, A. Borisenko et al., Symmetry 14, (2022).
- S. Origlia, M. S. Pramod, S. Schiller et al., Phys. Rev. A 98, 053443 (2018).
- S. B. Koller, J. Grotti, St. Vogt et al., Phys. Rev. Lett. 118, 073601 (2017).
- Г. С. Белотелов, Д. В. Сутырин, С. Н. Слюсарев, Ракетно-космическое приборостроение и информационные системы 6, 24 (2019).
- F. Riehle, Nat. Photon. 11, 25 (2017).
- O. V. Kolmogorov, A. N. Shchipunov, D. V. Prokhorov et al., Meas. Tech. 60, 901 (2017).
- S. W. Schediwy, D. R. Gozzard, C. Gravestock et al., Publ. Astronom. Soc. Australia 36, e007 (2019).
- C. Clivati, R. Aiello, G. Bianco et al., Optica 7, 1031 (2020).
- Y. Tanaka and H. Katori, J. Geodesy 95, 93 (2021).
- P. Delva, J. Lodewyck, S. Bilicki et al., Phys. Rev. Lett. 118, 221102 (2017).
- B. M. Roberts, P. Delva, A. Al-Masoudi et al., New J. Phys. 22, 093010 (2020).
- Y.-D. Tsai, J. Eby, and M. S. Safronova, Nat. Astron. 7, 113 (2023).
- K. Beloy, M. I. Bodine, T. Bothwell et al., Nature 591, 564 (2021).
- M. Fujieda, S.-H. Yang, T. Gotoh et al., IEEE Trans. Ultrason. Ferroelectr. Freq. Control 65, 973 (2018).
- G. Grosche, O. Terra, K. Predehl et al., Opt. Lett. 34, 2270 (2009).
- S. Droste, T. Udem, R. Holzwarth, and T. W. H¨ansch, C. R. Phys. 16, 524 (2015).
- D. R. Gozzard, L. A. Howard, B. P. Dix-Matthews et al., Phys. Rev. Lett. 128, (2022).
- Н. О. Жаднов, А. В. Масалов, В. Н. Сорокин и др., КЭ 47, 421 (2017).
- Н. О. Жаднов, К. С. Кудеяров, Д. С. Крючков и др., КЭ 48, 425 (2018).
- Д. С. Крючков, Н. О. Жаднов, К. С. Кудеяров и др., КЭ 50, 590 (2020).
- N. O. Zhadnov, K. S. Kudeyarov, D. S. Kryuchkov et al., Appl. Opt. 60, 9151 (2021).
- К. С. Кудеяров, А. А. Головизин, А. С. Борисенко и др., Письма в ЖЭТФ 114, 291 (2021).
- K. S. Kudeyarov, G. A. Vishnyakova, K. Y. Khabarova, and N. N. Kolachevsky, Laser Phys. 28, 105103 (2018).
- L. C. Sinclair, F. R. Giorgetta, W. C. Swann et al., Phys. Rev. A 89, 023805 (2014).
- B. P. Dix-Matthews, S. W. Schediwy, D. R. Gozzard et al., Nat.Commun. 12, 515 (2021).
- К. С. Кудеяров, Д. С. Крючков, Г. А. Вишнякова и др., КЭ 50, 267 (2020).
- G. A. Vishnyakova, K. S. Kudeyarov, E. O. Chiglintsev et al., in Proc. of the Joint Conference of the European Frequency and Time Forum and IEEE International Frequency Control Symposium (EFTF/IFCS) (2021); doi: 10.1109/EFTF/IFCS52194.2021.9604310
- D. R. Gozzard, S. W. Schediwy, B. Stone et al., Phys. Rev. Appl. 10, 024046 (2018).
- G. Kramer and W. Klische, in Proc. of the 2001 IEEE International Frequncy Control Symposium and PDA Exhibition (Cat. No.01CH37218), p. 144 (2001); doi: 10.1109/FREQ.2001.956178
- W. C. Swann, L. C. Sinclair, I. Khader et al., Appl. Opt. 56, 9406 (2017).
- M. W. Wright, J. F. Morris, J. M. Kovalik et al., Opt. Express 23, 33705 (2015).
Supplementary files
 
				
			 
					 
						 
						 
						 
						 
									

 
  
  
  Email this article
			Email this article 

 Open Access
		                                Open Access Access granted
						Access granted Subscription or Fee Access
		                                							Subscription or Fee Access
		                                					