Nanophotonics Research Centre, Shenzhen University &key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering, Shenzhen University, Shenzhen, 518060, China.
Department of Physics, Anhui Normal University, Wuhu, 241000, China.
Sci Rep. 2017 Feb 10;7:42276. doi: 10.1038/srep42276.
Optical beam wander is one of the most important issues for free-space optical (FSO) communication. We theoretically derive a beam wander model for Bessel beams propagating in turbulent atmosphere. The calculated beam wander of high order Bessel beams with different turbulence strengths are consistent with experimental measurements. Both theoretical and experimental results reveal that high order Bessel beams are less influenced by the turbulent atmosphere. We also demonstrate the Bessel beams based orbital angular momentum (OAM) multiplexing/demultiplexing in FSO communication with atmospheric turbulence. Under the same atmospheric turbulence condition, the bit error rates of transmitted signals carried by high order Bessel beams show smaller values and fluctuations, which indicates that the high order Bessel beams have an advantage of mitigating the beam wander in OAM multiplexing FSO communication.
光束漂移是自由空间光(FSO)通信中最重要的问题之一。我们从理论上推导了在湍流大气中传播的贝塞尔光束的光束漂移模型。不同湍流强度的高阶贝塞尔光束的计算光束漂移与实验测量结果一致。理论和实验结果均表明,高阶贝塞尔光束受湍流大气的影响较小。我们还在具有大气湍流的 FSO 通信中演示了基于贝塞尔光束的轨道角动量(OAM)复用/解复用。在相同的大气湍流条件下,高阶贝塞尔光束传输信号的误码率较小且波动较小,这表明高阶贝塞尔光束在 OAM 复用 FSO 通信中具有减轻光束漂移的优势。