Optical Communication Technology, Volume. 44, Issue 6, 1(2020)
Research on underwater single photon visible light communication technology
[4] [4] FASHAM S, DUNN S. Developments in subsea wireless communications[C]// IEEE Underwater Technology(UT), February 23-25, 2015, Chennai, India. New York: IEEE, 2015: 1-5.
[5] [5] ZENG Z Q, FU S, ZHANG H H, et al. A survey of underwater optical wireless communications [J]. IEEE Commun. Surveys Tuts., 2016,19(1): 204-238.
[6] [6] KULHANDJIAN H. Inside out: Underwater communications[J]. Journal Ocean Techno., 2014, 9(2): 104-105.
[7] [7] WU T C, CHI Y C, WANG H Y, et al. Blue laser diode enables underwater communication at 12.4 Gb/s [J]. Sci. Rep. 2017, 7: 40480-1-40480-9.
[8] [8] XU J, LIN A B, SONG Y, et al. Underwater Laser Communication Using an OFDM-modulated 520nm Laser Diode [J]. IEEE Photon. Technol. Lett., 2016, 28(20): 2133-2136.
[9] [9] TIAN P, LIU X, YI S, et al. High-speed underwater optical wireless communication using a blue GaN-based micro-LED [J]. Opt. Express, 2017, 25(2):1193-1201.
[10] [10] DINH D V, QUAN Z, ROYCROFT B, et al. GHz bandwidth semipolar (11-22)InGaN/GaN light-emitting diodes [J]. Opt. Lett., 2016, 41(24): 5752-5755.
[11] [11] XU J, KONG M, LIN A, et al. OFDM-based broadband underwater wireless optical communication system using a compact blue LED [J]. Opt. Commun., 2016, 369: 100-105.
[12] [12] LEE C, ZHANG C, CANTORE M, et al. 4 Gb/s direct modulation of 450 nm GaN laser for high-speed visible light communication [J]. Opt. Express, 2015, 23(12): 16232-16237.
[13] [13] TANG S J, DONG Y H, ZHANG X D. Impulse response modeling for underwater wireless optical communication links [J]. IEEE Trans. Commun., 2014, 62(1): 882-891.
[14] [14] YI X, LI Z, LIU Z. Underwater optical communication performance for laser beam propagation through weak oceanic turbulence [J]. Applied Optics, 2015, 54(6): 1273-1278.
[15] [15] JAMALI M V, AKHOUNDI F, SALEHI J A. Performance Characterization of Relay-Assisted Wireless Optical CDMA Networks in Turbulent Underwater Channel [J]. IEEE Trans. Wireless Commun., 2016, 15(6): 4104-4116.
[16] [16] LI Y C, SAFARI M, HENDERSON R, et al. Optical OFDM with single-photon avalanche diode [J]. IEEE Photon.Technol. Lett., 2015, 27(9): 943-946.
[17] [17] WANG C, YU H Y, ZHU Y J. A long distance underwater visible light communication system with single photon avalanche diode [J]. IEEE Photonics Journal, 2016, 8(5): 7906311-1-7906311-11.
[18] [18] BWEUBE B L, RHEAUME V P, THERRIEN A C, et al. Development of a Single Photon Avalanche Diode (SPAD) Array in High Voltage CMOS 0.8 μm dedicated to a 3D Integrated Circuit (3DIC)[C]// IEEE NSS-MIC Conference Records, October 27-November 3, 2012, Anaheim, USA, New York: IEEE, 2012: 1835-1839.
[19] [19] MAO T Q, WANG Z C, WANG Q. Receiver design for SPAD-based VLC systems under Poisson-Gaussian mixed noise model [J]. Opt. Express, 2017, 25(2): 799-809.
[20] [20] SHAFIQUE T, AMIN O, ABDALLAH M, et al. Performance Analysis of Single-Photon Avalanche Diode underwater VLC System Using ARQ [J]. IEEE Photonics Journal, 2017, 9: 2743007-1-2743007-11.
[22] [22] SHEN J, WANG J, CHEN X, et al. Towards power-efficient long-reach underwater wireless optical communication using a multi-pixel photon counter [J]. Opt. Express, 2018, 26(18): 23565-23571.
[23] [23] SHEN J, WANG J L, YU C Y, et al. Single LED-based 46-m Underwater Wireless Optical Communication Enabled by a Multi-Pixel Photon Counter with Digital Output [J]. Opt. Commun., 2019, 438: 78-82.
[24] [24] SARBAZI E, SAFARI A, HAAS H. On the Information Transfer Rate of SPAD Receivers for Optical Wireless Communications[C]// IEEE Global Communications Conference, December 4-8, 2016, Washington, USA. New York: IEEE, 2016: 16654904-1-16654904-6.
Get Citation
Copy Citation Text
ZHU Yijun, WANG Chao, WANG Tao, REN Jiawei. Research on underwater single photon visible light communication technology[J]. Optical Communication Technology, 2020, 44(6): 1
Category:
Received: May. 12, 2020
Accepted: --
Published Online: Aug. 18, 2020
The Author Email: