Xu Yonggen, Xu Qian, Liu Wenli
J Opt Soc Am A Opt Image Sci Vis. 2023 Oct 1;40(10):1895-1907. doi: 10.1364/JOSAA.494951.
Optical wireless communications applications are restricted by oceanic media-induced beam quality degradation. However, modulating the coherence and polarization structures of the laser beams can effectively diminish the negative influence of oceanic turbulence on the beams. The average intensity of a radially polarized Laguerre-Gaussian Schell-model vortex (RPLGSMV) beam propagating through oceanic turbulence is explored by employing the extended Huygens-Fresnel principle. We found that the average intensity of an RPLGSMV beam is greatly affected by oceanic turbulence with a large rate of dissipation of the mean-square temperature and a large relative strength of the temperature and salinity fluctuations as well as the small rate of dissipation of the turbulent kinetic energy per unit mass of fluid and small Kolmogorov microscale. It was also found that a RPLGSMV beam with a larger radial index, topological charge, initial coherent length, and beam waist has a stronger anti-turbulence ability. Our numerical findings may be of great significance for the detection and imaging of oceanic optical telecommunications links.
光无线通信应用受到海洋介质引起的光束质量退化的限制。然而,调制激光束的相干性和偏振结构可以有效减少海洋湍流对光束的负面影响。通过采用扩展的惠更斯 - 菲涅耳原理,研究了径向偏振拉盖尔 - 高斯谢尔模型涡旋(RPLGSMV)光束在海洋湍流中传播时的平均强度。我们发现,RPLGSMV光束的平均强度受到海洋湍流的显著影响,具体表现为均方温度的大耗散率、温度和盐度波动的大相对强度以及单位质量流体湍动能的小耗散率和小科尔莫戈罗夫微尺度。还发现,具有较大径向指数、拓扑电荷、初始相干长度和束腰的RPLGSMV光束具有更强的抗湍流能力。我们的数值研究结果对于海洋光通信链路的检测和成像可能具有重要意义。