Chinese Optics Letters, Volume. 20, Issue 10, 100601(2022)

Portable system integrated with time comparison, ranging, and communication

Qiongqiong Zhang1, Chengkai Pang1,2, Yurong Wang1,2, Guangyue Shen1,2, Lei Yang1, Zhaohui Li1, Haiyan Huang1, and Guang Wu1,2,3、*
Author Affiliations
  • 1State Key Laboratory of Precision Spectroscopy (East China Normal University), Shanghai 200241, China
  • 2Chongqing Key Laboratory of Precision Optics, Chongqing Institute of East China Normal University, Chongqing 401120, China
  • 3Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China
  • show less
    References(30)

    [1] A. Einstein. Approximate integration of the field equations of gravitation. Sitzungsber. K. Preuss. Akad. Wiss., 1, 688(1916).

    [2] V. Connaughton, E. Burns, A. Goldstein, L. Blackburn, M. S. Briggs, B.-B. Zhang, J. Camp, N. Christensen, C. M. Hui, P. Jenke, T. Littenberg, J. E. McEnery, J. Racusin, P. Shawhan, L. Singer, J. Veitch, C. A. Wilson-Hodge, P. N. Bhat, E. Bissaldi, W. Cleveland, G. Fitzpatrick, M. M. Giles, M. H. Gibby, A. von Kienlin, R. M. Kippen, S. McBreen, B. Mailyan, C. A. Meegan, W. S. Paciesas, R. D. Preece, O. J. Roberts, L. Sparke, M. Stanbro, K. Toelge, P. Veres. Fermi GBM observations of LIGO gravitational wave event GW150914. Astrophys. J. Lett., 6, 826(2016).

    [3] Z. Luo, S. Bai, X. Bian, G. Chen, P. Dong, Y. Dong, W. Gao, X. Gong, J. He, H. Li, X. Li, Y. Li, H. Liu, M. Shao, T. Song, B. Sun, W. Tang, P. Xu, S. Xu, R. Yang, G. Jin. Gravitational wave detection by space laser interferometry. Adv. Mech., 43, 415(2013).

    [4] M. Pitkin, S. Reid, S. Rowan, J. Hough. Gravitational wave detection by interferometry (ground and space). Living Rev. Relativ., 14, 5(2011).

    [5] J. R. Gair, M. Vallisneri, S. L. Larson, J. G. Baker. Testing general relativity with low-frequency, space-based gravitational-wave detectors. Living Rev. Relativ., 16, 7(2013).

    [6] G. Wang, Z. Li, J. Huang, H. Duan, X. Huang, H. Liu, Q. Liu, S. Yang, L. Tu, H. Yeh. Analysis and suppression of thermal effect of an ultra-stable laser interferometer for space-based gravitational waves detection. Chin. Opt. Lett., 20, 011203(2022).

    [7] D. Sweeney, G. Mueller. Experimental verification of clock noise transfer and components for space based gravitational wave detectors. Opt. Express, 20, 25603(2012).

    [8] R. Gao, H. Liu, Y. Zhao, Z. Luo, J. Shen, G. Jin. Laser acquisition experimental demonstration for space gravitational wave detection missions. Opt. Express, 29, 6368(2021).

    [9] K. Danzmann. LISA: laser interferometer space antenna for gravitational wave measurements. Class. Quant. Grav., 13, A247(1996).

    [10] S. Babak, J. Gair, A. Sesana, E. Barausse, C. F. Sopuerta, C. P. L. Berry, E. Berti, P. Amaro-Seoane, A. Petiteau, A. Klein. Science with the space-based interferometer LISA. V. Extreme mass-ratio inspirals. Phys. Rev. D, 95, 103012(2017).

    [11] M. Y. M. Lau, I. Mandel, A. Vigna-Gómez, C. J. Neijssel, S. Stevenson, A. Sesana. Detecting double neutron stars with LISA. Mon. Not. R. Astron. Soc., 492, 3061(2020).

    [12] K. Danzmann, A. Rüdiger. LISA technology-concept, status, prospects. Class. Quant. Grav., 20, S1(2003).

    [13] M. Armano, H. Audley, G. Auger, J. T. Baird, M. Bassan, P. Binetruy, M. Born, D. Bortoluzzi, N. Brandt, M. Caleno, L. Carbone, A. Cavalleri, A. Cesarini, G. Ciani, G. Congedo, A. M. Cruise, K. Danzmann, M. de Deus Silva, R. De Rosa, M. Diaz-Aguiló, L. Di Fiore, I. Diepholz, G. Dixon, R. Dolesi, N. Dunbar, L. Ferraioli, V. Ferroni, W. Fichter, E. D. Fitzsimons, R. Flatscher, M. Freschi, A. F. G. Marín, C. G. Marirrodriga, R. Gerndt, L. Gesa, F. Gibert, D. Giardini, R. Giusteri, F. Guzmán, A. Grado, C. Grimani, A. Grynagier, J. Grzymisch, I. Harrison, G. Heinzel, M. Hewitson, D. Hollington, D. Hoyland, M. Hueller, H. Inchauspé, O. Jennrich, P. Jetzer, U. Johann, B. Johlander, N. Karnesis, B. Kaune, N. Korsakova, C. J. Killow, J. A. Lobo, I. Lloro, L. Liu, J. P. López-Zaragoza, R. Maarschalkerweerd, D. Mance, V. Martín, L. Martin-Polo, J. Martino, F. Martin-Porqueras, S. Madden, I. Mateos, P. W. McNamara, J. Mendes, L. Mendes, A. Monsky, D. Nicolodi, M. Nofrarias, S. Paczkowski, M. Perreur-Lloyd, A. Petiteau, P. Pivato, E. Plagnol, P. Prat, U. Ragnit, B. Raïs, J. Ramos-Castro, J. Reiche, D. I. Robertson, H. Rozemeijer, F. Rivas, G. Russano, J. Sanjuán, P. Sarra, A. Schleicher, D. Shaul, J. Slutsky, C. F. Sopuerta, R. Stanga, F. Steier, T. Sumner, D. Texier, J. I. Thorpe, C. Trenkel, M. Tröbs, H. B. Tu, D. Vetrugno, S. Vitale, V. Wand, G. Wanner, H. Ward, C. Warren, P. J. Wass, D. Wealthy, W. J. Weber, L. Wissel, A. Wittchen, A. Zambotti, C. Zanoni, T. Ziegler, P. Zweifel. Sub-femto-g free fall for space-based gravitational wave observatories: LISA pathfinder results. Phys. Rev. Lett., 116, 231101(2016).

    [14] W. Hu, Y. Wu. The Taiji Program in Space for gravitational wave physics and the nature of gravity. Natl. Sci. Rev., 4, 685(2017).

    [15] Z. Luo, Z. Guo, G. Jin. A brief analysis to Taiji: science and technology. Results Phys., 16, 102918(2020).

    [16] Z. Luo, Y. Wang, Y. Wu. The Taiji program: a concise overview. Prog. Theor. Exp. Phys., 2021, 05A108(2021).

    [17] (2009).

    [18] S. E. Pollack, R. T. Stebbins. A demonstration of LISA laser communication. Class. Quant. Grav., 23, 4201(2006).

    [19] J. J. Esteban, A. F. García, S. Barke, A. M. Peinado, F. G. Cervantes, I. Bykov, G. Heinzel, K. Danzmann. Experimental demonstration of weak-light laser ranging and data communication for LISA. Opt. Express, 19, 15937(2011).

    [20] T. S. Schwarze, G. F. Barranco, D. Penkert, M. Kaufer, O. Gerberding, G. Heinzel. Picometer-stable hexagonal optical bench to verify LISA phase extraction linearity and precision. Phys. Rev. Lett., 122, 081104(2019).

    [21] G. Heinzel, J. J. Esteban, S. Barke, M. Otto, Y. Wang, A. F. Garcia, K. Danzmann. uxiliary functions of the LISA laser link: ranging, clock noise transfer and data communication. Class. Quant. Grav., 28, 094008(2011).

    [22] G. de Vine, B. Ware, K. McKenzie, R. E. Spero, W. M. Klipstein, D. A. Shaddock. Experimental demonstration of time-delay interferometry for the laser interferometer space antenna. Phys. Rev. Lett., 104, 211103(2010).

    [23] J. J. Degnan. Asynchronous laser transponders for precise interplanetary ranging and time transfer. J. Geodyn., 34, 551(2002).

    [24] W. Meng, Y. Wang, K. Tang, Z. Zhang, S. Jin, I. Procházka, Z. Zhang, G. Wu. High-precision single-photon laser time transfer with temperature drift post-compensation. Sensors, 20, 6655(2020).

    [25] J. Blazej, I. Prochazka, J. Kodet, P. Linhart. Indoor demonstration of free-space picosecond two-way time transfer on single photon level. Proc. SPIE, 9224, 92241E(2014).

    [26] D. Wu, L. Yang, X. Chen, Z. Li, G. Wu. Multi-channel pseudo-random coding single-photon ranging and imaging. Chin. Opt. Lett., 20, 021202(2022).

    [27] D. Shin, F. Xu, D. Venkatraman, R. Lussana, F. Villa, F. Zappa, V. K. Goya, F. N. Wong, J. H. Shapiro. Photon-efficient imaging with a single-photon camera. Nat. Commun., 7, 12046(2016).

    [28] G. Wen, J. Huang, L. Zhang, C. Li, T. Wen, J. Wang. A high-speed and high-sensitivity photon-counting communication system based on multichannel SPAD detection. IEEE Photon. J., 13, 7900310(2021).

    [29] B. Du, Y. Wang, E. Wu, X. Chen, Guang Wu. Laser communication based on a multi-channel single-photon detector. Opt. Commun., 426, 89(2018).

    [30] Z. Wang, W. Sha, Z. Chen, Y. Kang, Z. Luo, M. Li, Y. Li. Generation of vector beams in planar photonic crystal cavities with multiple missing-hole defects. Chin. Opt., 11, 131(2018).

    Cited By

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    [1] Lewei Gong, Yuanzhe Qu, Yingxiong Song, Shulei Wang, Qianwu Zhang, Junjie Zhang.

    Tools

    Get Citation

    Copy Citation Text

    Qiongqiong Zhang, Chengkai Pang, Yurong Wang, Guangyue Shen, Lei Yang, Zhaohui Li, Haiyan Huang, Guang Wu. Portable system integrated with time comparison, ranging, and communication[J]. Chinese Optics Letters, 2022, 20(10): 100601

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Fiber Optics and Optical Communications

    Received: Feb. 11, 2022

    Accepted: May. 25, 2022

    Published Online: Jun. 27, 2022

    The Author Email: Guang Wu (gwu@phy.ecnu.edu.cn)

    DOI:10.3788/COL202220.100601

    Topics