Propagation Dynamics of Partially Coherent Perfect Vortex Beams in Biological Tissue Turbulence
Zhengguo Deng, Xiaohan Xie, Qian Pei, Jiale Yang, Zhimin Zhuo, Yufeng Shao, Jingping Xu, Shuailing WangBased on the correlation function of partially coherent perfect vortex beams (PCPVBs) in biological tissue turbulence, a transmission model was established to systematically study how biological tissue and source parameters affect the received probability. Results indicate that the self-focusing property improves the received probability of PCPVBs during propagation, yielding a performance superior to that at the initial state. However, this enhancement effect gradually diminishes with decreasing turbulence strength. Owing to the perfect property, a similar received probability can be maintained at low-order orbital angular momentum (OAM), yet an inevitable degradation occurs as the OAM order further increases. The analysis also demonstrates that a beam configuration with a longer wavelength and a smaller ring radius can achieve superior transmission performance in biological tissue turbulence characterized by a shorter cut-off correlation length, smaller outer scale, and smaller fractal dimension. Furthermore, enlarging the receiving aperture reduces received probability; however, the declining trend levels off when the aperture is sufficiently large to collect the entire intensity information. This study unveils the propagation dynamics of PCPVBs in complex biological media, providing a crucial theoretical foundation and guidance for their applications in biological tissue optical communication, optical detection, and optical imaging.