Yue Peng, Hu Jiachen, Yi Xiang, Xu Dongling, Liu Yanyan
Opt Express. 2019 Dec 23;27(26):37986-37998. doi: 10.1364/OE.27.037986.
Vortex beam carrying angular momentum (OAM) will be disturbed by the random fluctuation of the refraction index of turbulent atmosphere, resulting in intermodal crosstalk among the different OAM modes. Recent advances have demonstrated that the employment of the abruptly autofocusing vortex beams can potentially mitigate the crosstalk effect. In this paper, a new type of abruptly autofocusing vortex beams, called Airy Gaussian vortex beam array (AGVBA) is proposed. By means of multi-plane wave optics simulation, the degradation of signal mode for AGVBA propagating through isotropic atmospheric turbulence is studied. In a comparison with the conventional abruptly autofocusing vortex beams, such as the ring Airy vortex beam (RAVB) and the Airy vortex beam array (AVBA), it is shown that AGVBA achieves more centralized intensity as well as a larger spot at the focal plane, thus can effectively balance the beam spreading and beam wander effect, resulting in mitigation of intermodal crosstalk.
携带角动量(OAM)的涡旋光束会受到湍流大气折射率随机涨落的干扰,导致不同OAM模式之间的模式串扰。最近的进展表明,采用突然自聚焦涡旋光束可能会减轻串扰效应。本文提出了一种新型的突然自聚焦涡旋光束,称为艾里高斯涡旋光束阵列(AGVBA)。通过多平面波光学模拟,研究了AGVBA在各向同性大气湍流中传播时信号模式的退化情况。与传统的突然自聚焦涡旋光束,如环形艾里涡旋光束(RAVB)和艾里涡旋光束阵列(AVBA)相比,结果表明AGVBA在焦平面处实现了更集中的强度以及更大的光斑,从而可以有效地平衡光束扩展和光束漂移效应,减轻模式间串扰。