Zhang Hao, Zeng Jun, Lu Xingyuan, Wang Zhuoyi, Zhao Chengliang, Cai Yangjian
School of Physical Science and Technology, Soochow University, Suzhou 215006, China.
School of Physics and Electronics, Shandong Provincial Engineering and Technical Center of Light Manipulations & Shandong Provincial Key Laboratory of Optics and Photonic Devices, Shandong Normal University, Jinan 250014, China.
Nanophotonics. 2021 Dec 19;11(2):241-273. doi: 10.1515/nanoph-2021-0616. eCollection 2022 Jan.
As an indispensable complement to an integer vortex beam, the fractional vortex beam has unique physical properties such as radially notched intensity distribution, complex phase structure consisting of alternating charge vortex chains, and more sophisticated orbital angular momentum modulation dimension. In recent years, we have noticed that the fractional vortex beam was widely used for complex micro-particle manipulation in optical tweezers, improving communication capacity, controllable edge enhancement of image and quantum entanglement. Moreover, this has stimulated extensive research interest, including the deep digging of the phenomenon and physics based on different advanced beam sources and has led to a new research boom in micro/nano-optical devices. Here, we review the recent advances leading to theoretical models, propagation, generation, measurement, and applications of fractional vortex beams and consider the possible directions and challenges in the future.
作为整数涡旋光束不可或缺的补充,分数涡旋光束具有独特的物理特性,如径向有缺口的强度分布、由交替电荷涡旋链组成的复杂相位结构以及更复杂的轨道角动量调制维度。近年来,我们注意到分数涡旋光束被广泛用于光镊中的复杂微粒子操纵、提高通信容量、图像的可控边缘增强和量子纠缠。此外,这激发了广泛的研究兴趣,包括基于不同先进光束源对该现象和物理的深入挖掘,并引发了微纳光学器件领域的新一轮研究热潮。在此,我们回顾了分数涡旋光束在理论模型、传播、产生、测量和应用方面的最新进展,并考虑了未来可能的发展方向和挑战。