• Acta Photonica Sinica
  • Vol. 51, Issue 11, 1106006 (2022)
Qingze YAN, Yixin ZHANG, and Yun ZHU*
Author Affiliations
  • School of Science,Jiangnan University,Wuxi,Jiangsu 214122,China
  • show less
    DOI: 10.3788/gzxb20225111.1106006 Cite this Article
    Qingze YAN, Yixin ZHANG, Yun ZHU. Transport Properties of Multiple Phase Shift Keying Modulated Perfect Optical Vortex in Turbulent Absorbing Seawater[J]. Acta Photonica Sinica, 2022, 51(11): 1106006 Copy Citation Text show less
    References

    [1] Weiwei XIAO, Han ZHANG, Xinying ZHAO et al. Propagation property of X-type vortex beam under the interaction of SAM and OAM. Acta Photonica Sinica, 51, 0151115(2022).

    [2] Mingjian CHENG, Lixin GUO, Jiangting LI et al. Channel capacity of the OAM based free-space optical communication links with Bessel-Gauss beams in turbulent ocean. IEEE Photonics Journal, 8, 7901411(2016).

    [3] Ye LI, Lin YU, Yixin ZHANG. Influence of anisotropic turbulence on the orbital angular momentum modes of Hermite-Gaussian vortex beam in the ocean. Optics Express, 25, 12203-12215(2017).

    [4] Xiaozhou CUI, Xiaoli YIN, Huan CHANG et al. Analysis of an adaptive orbital angular momentum shift keying decoder based on machine learning under oceanic turbulence channels. Optics Communication, 429, 138-143(2018).

    [5] A WILLNER, Zhe ZHAO, Yongxiong REN et al. Underwater optical communications using orbital angular momentum-based spatial division multiplexing. Optics Communication, 408, 21-25(2018).

    [6] Lin YU, Yixin ZHANG. Analysis of modal crosstalk for communication in turbulent ocean using Lommel-Gaussian beam. Optics Express, 25, 22565-22574(2017).

    [7] Shibao DENG, Dongyu YANG, Yixin ZHANG. Capacity of communication link with carrier of vortex localized wave in absorptive turbulent seawater. Waves in Random and Complex Media, 1844925(2020).

    [8] A OSTROVSKY, C RICKENSTORFF-PARRAO, V ARRIZÓN. Generation of the ‘perfect’ optical vortex using a liquid-crystal spatial light modulator. Optics Letters, 38, 534-536(2013).

    [9] Yansheng LIANG, Shaohui YAN, Minru HE et al. Generation of a double-ring perfect optical vortex by the Fourier transform of azimuthally polarized Bessel beams. Optics Letters, 44, 1504-1508(2019).

    [10] J PINNELL, V RODRÍGUEZ-FAJARDO, A FORBES. How perfect are perfect vortex beams?. Optics Letters, 44, 5614-5617(2019).

    [11] Fuquan ZHU, Sujuan HUANG, Wei SHAO et al. Free-space optical communication link using perfect vortex beams carrying orbital angular momentum (OAM). Optics Communication, 396, 50-57(2017).

    [12] Wei SHAO, Sujuan HUANG, Xianpeng LIU et al. Free-space optical communication with perfect optical vortex beams multiplexing. Optics Communication, 427, 545-550(2018).

    [13] Chunyong YANG, Yue LAN, Xiaoyu JIANG et al. Beam-holding property analysis of the perfect optical vortex beam transmitting in atmospheric turbulence. Optics Communication, 472, 125879(2020).

    [14] M KARAHROUDI, S A MOOSAVI, A MOBASHERY et al. Performance evaluation of perfect optical vortices transmission in an underwater optical communication system. Applied Optics, 57, 9148-9154(2018).

    [15] Wei WANG, Ping WANG, Weina PANG et al. Evolution properties and spatial-mode UWOC performances of the perfect vortex beam subject to oceanic turbulence. IEEE Transactions on Communicayions, 69, 7647-7658(2021).

    [16] Shanfa TANG, Jiawei YAN, Kangle YONG et al. Propagation characteristics of the perfect vortex beam in anisotropic oceanic turbulence. Applied Optics, 59, 9956-9962(2020).

    [17] Qiong WU, Bo WANG, Tao WANG et al. Analysis of underwater wireless optical transmission characteristics based on Monte Carlo method. Acta Photonica Sinica, 50, 0406002(2021).

    [18] Hongbin YANG, Qingze YAN, Yixin ZHANNG et al. Received probability of perfect optical vortex in absorbent and weak turbulent seawater links. Applied Optics, 60, 10772-10779.

    [19] Yun ZHU, Yixin ZHANG, Zhengda HU. Spiral spectrum of Airy beams propagation through moderate-to-strong turbulence of maritime atmosphere. Optics Express, 24, 10847-10857(2016).

    [20] G JEONG, S KIM. Performance evaluation of underwater optical wireless communication depending on the modulation scheme. Current Optics and Photonics, 6, 39-43(2022).

    [21] M FEWELL, A TROJAN. Absorption of light by water in the region of high transparency: recommended values for photon-transport calculations. Applied Optics, 58, 2408-2421(2019).

    [22] Qingze YAN, Yun ZHU, Yixin ZHANG. Capacity of the weakly absorbent turbulent ocean channel with the coaxial double-position power Gaussian vortex. Journal of Marine Science and Engineering, 9, 111712-111717(2021).

    [23] Ye LI, Yinxin ZHANG, Yun ZHU. Oceanic spectrum of unstable stratification turbulence with outer scale and scintillation index of Gaussian-beam wave. Optics Express, 27, 16-22(2019).

    [24] J GUTIÉRREZ-VEGA, M BANDRES. Normalization of the Mathieu-Gauss optical beams. Journal of the Optical Society of America A, 24, 215-220(2007).

    [25] L ANDREWS, R PHILLIPS. Laser beam propagation through random medium(2005).

    [26] A JEFFREY, D ZWILLINGER. Table of integrals, series, and products(2007).

    [27] K HO. Phase-modulated optical communication systems(2001).

    [28] Hongbin YANG, Qingze YAN, Pan WANG et al. Bit-error rate and average capacity of an absorbent and turbulent underwater wireless communication link with perfect Laguerre-Gauss beam. Optics Express, 30, 9053-9064(2022).

    [29] E KROUK, S SEMENOV. Modulation and coding techniques in wireless communications(2011).

    [30] Yizhan DAI, Xiao CHEN, Xingqi YANG et al. 200-m/500-Mbps underwater wireless optical communication system utilizing a sparse nonlinear equalizer with a variable step size generalized orthogonal matching pursuit. Optics Express, 29, 32228-32243(2021).

    [31] B WOZ’NIAK, J DERA. Light absorption in sea water(2007).

    Qingze YAN, Yixin ZHANG, Yun ZHU. Transport Properties of Multiple Phase Shift Keying Modulated Perfect Optical Vortex in Turbulent Absorbing Seawater[J]. Acta Photonica Sinica, 2022, 51(11): 1106006
    Download Citation