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在焦点处产生离散高阶光学涡旋晶格。

Generation of discrete higher-order optical vortex lattice at focus.

作者信息

Wang Yakun, Ma Haixiang, Tai Yuping, Li Xinzhong

出版信息

Opt Lett. 2023 Sep 1;48(17):4464-4467. doi: 10.1364/OL.497995.

Abstract

Higher-order vortices (HOVs) extend the dimensions of optical vortex regulation, which is of great significance in optical communication and optical tweezers. Herein, we demonstrate an alternative scheme to produce a HOV in the focus plane using multiple Laguerre-Gaussian (LG) beam interference, termed a discrete higher-order optical vortex lattice (DHOVL). The modulation depth of the DHOVL exceeds 2π. In this case, the topological charge (TC) of the DHOVL is determined by the difference of the phase period between the innermost and the outermost interference beams. Compared with a conventional HOV (CHOV), the vortex exists in a form of multiple unit singularities sharing a dark core. In addition, the average orbital angular momentum per photon of the DHOVL increases with increasing TC, surpassing that of the CHOV. This work provides a novel, to the best of our knowledge, scheme to produce a HOV, which will facilitate several advanced applications, including optical micromanipulation, optical sensing and imaging, and optical fabrication.

摘要

高阶涡旋(HOV)扩展了光学涡旋调控的维度,这在光通信和光镊中具有重要意义。在此,我们展示了一种利用多个拉盖尔 - 高斯(LG)光束干涉在焦平面产生高阶涡旋的替代方案,称为离散高阶光学涡旋晶格(DHOVL)。DHOVL的调制深度超过2π。在这种情况下,DHOVL的拓扑电荷(TC)由最内层和最外层干涉光束之间的相位周期差决定。与传统高阶涡旋(CHOV)相比,涡旋以共享暗核的多个单位奇点的形式存在。此外,DHOVL每个光子的平均轨道角动量随拓扑电荷增加而增加,超过了CHOV。据我们所知,这项工作提供了一种产生高阶涡旋的新颖方案,这将促进包括光学微操纵、光学传感与成像以及光学制造在内的多种先进应用。

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