Wen Jisen, Sun Qiuyuan, Luo Mengdi, Ma Chengpeng, Yang Zhenyao, Su Chenyi, Cao Chun, Zhu Dazhao, Ding Chenliang, Xu Liang, Kuang Cuifang, Liu Xu
Research Center for Intelligent Chips and Devices, Zhejiang Lab, Hangzhou 311121, China.
State Key Laboratory of Modern Optical Instrumentations, Zhejiang University, Hangzhou 310027, China.
Micromachines (Basel). 2022 Oct 18;13(10):1771. doi: 10.3390/mi13101771.
Beams with optical vortices are widely used in various fields, including optical communication, optical manipulation and trapping, and, especially in recent years, in the processing of nanoscale structures. However, circular vortex beams are difficult to use for the processing of chiral micro and nanostructures. This paper introduces a multiramp helical-conical beam that can produce a three-dimensional spiral light field in a tightly focused system. Using this spiral light beam and the two-photon direct writing technique, micro-nano structures with chiral characteristics in space can be directly written under a single exposure. The fabrication efficiency is more than 20 times higher than the conventional point-by-point writing strategy. The tightly focused properties of the light field were utilized to analyze the field-dependent properties of the micro-nano structure, such as the number of multiramp mixed screw-edge dislocations. Our results enrich the means of two-photon polymerization technology and provide a simple and stable way for the micromachining of chiral microstructures, which may have a wide range of applications in optical tweezers, optical communications, and metasurfaces.
带有光学涡旋的光束在包括光通信、光操纵与捕获等各个领域有着广泛应用,尤其是近年来在纳米级结构加工中。然而,圆形涡旋光束难以用于手性微纳结构的加工。本文介绍了一种多斜率螺旋锥光束,它能在紧聚焦系统中产生三维螺旋光场。利用这种螺旋光束和双光子直写技术,可在单次曝光下直接写入具有空间手性特征的微纳结构。其制造效率比传统逐点写入策略高出20多倍。利用光场的紧聚焦特性分析了微纳结构的场相关特性,如多斜率混合螺旋边缘位错的数量。我们的结果丰富了双光子聚合技术手段,为手性微结构的微加工提供了一种简单且稳定的方法,这在光镊、光通信和超表面等领域可能有广泛应用。