Ho Victor W L, Chang Yao, Liu Yang, Zhang Chi, Li Yuhua, Davidson Roy R, Little Brent E, Wang Guanghui, Chu Sai T
Department of Physics, City University of Hong Kong, Kowloon 999077, Hong Kong, China.
College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, China.
Micromachines (Basel). 2020 Feb 15;11(2):202. doi: 10.3390/mi11020202.
Based on the gradient force of evanescent waves in silica waveguides and add-drop micro-ring resonators, the optical trapping and manipulation of micro size particles is demonstrated in a self-locked scheme that maintains the on-resonance system even if there is a change in the ambient temperature or environment. The proposed configuration allows the trapping of particles in the high Q resonator without the need for a precise wavelength adjustment of the input signal. On the one hand, a silicon dioxide waveguide having a lower refractive index and relatively larger dimensions facilitates the coupling of the laser with a single-mode fiber. Furthermore, the experimental design of the self-locked scheme reduces the sensitivity of the ring to the environment. This combination can trap the micro size particles with a high stability while manipulating them with high accuracy.
基于二氧化硅波导和添加-丢弃微环谐振器中倏逝波的梯度力,在一种自锁方案中展示了对微米级粒子的光捕获和操纵,该方案即使在环境温度或环境发生变化时也能保持共振系统。所提出的配置允许在高Q谐振器中捕获粒子,而无需对输入信号进行精确的波长调整。一方面,具有较低折射率和相对较大尺寸的二氧化硅波导便于激光与单模光纤的耦合。此外,自锁方案的实验设计降低了环对环境的敏感度。这种组合能够在高精度操纵微米级粒子的同时以高稳定性捕获它们。