Jiahao Chen, Hongfei Gao, Yujia Zheng, Dong Hu, Xinlei Zhu, Fei Wang, Yangjian Cai, Guoquan Zhou
Airy and Airy-related optical beams, due to their extraordinary propagation characteristics such as self-bending and auto-focusing, provide a new degree of freedom for optical micro-manipulation. However, most studies are limited to low-efficiency single-position trapping. In this work, we introduce a class of Airy-related beam arrays that are the coherent superposition of off-axis Airyprime-Gaussian beams, called dual-ring Airyprime-Gaussian vortex beam arrays, capable of multi-position capture and improving capture stiffness simultaneously. By judiciously adjusting the beam parameters and topological charges in inner and outer rings, the beam intensity profiles with a controllable number of light spots at the focal plane or multiple-focusing optical bottle-like profiles along the propagation axis can be achieved. Using these advantages, we experimentally demonstrate the multi-particle trapping with an enhancement of trap stiffness by 46.42% compared with the same type of optical capture. Further, in optical bottle capture, our experimental results show that it can save 73.86% power by virtue of auto-focusing properties. Our strategy overcomes the limitations of conventional holographic optical tweezers, enabling high-performance, low-power-consumption, multi-axial-positions trapping of multiple particles.