Chen Qingming, Li Tenghao, Li Zhaohui, Long Jinlin, Zhang Xuming
Department of Applied Physics, The Hong Kong Polytechnic University, Hong Kong 999077, China.
School of Electronics and Information Technology, Sun Yat-Sen University, Guangzhou 510275, China.
Micromachines (Basel). 2018 Feb 26;9(3):97. doi: 10.3390/mi9030097.
Optofluidics incorporates optics and microfluidics together to construct novel devices for microsystems, providing flexible reconfigurability and high compatibility. Among many novel devices, a prominent one is the in-plane optofluidic lens. It manipulates the light in the plane of the substrate, upon which the liquid sample is held. Benefiting from the compatibility, the in-plane optofluidic lenses can be incorporated into a single chip without complicated manual alignment and promises high integration density. In term of the tunability, the in-plane liquid lenses can be either tuned by adjusting the fluidic interface using numerous microfluidic techniques, or by modulating the refractive index of the liquid using temperature, electric field and concentration. In this paper, the in-plane liquid lenses will be reviewed in the aspects of operation mechanisms and recent development. In addition, their applications in lab-on-a-chip systems are also discussed.
光流体学将光学和微流体学结合在一起,用于构建新型微系统器件,具有灵活的可重构性和高兼容性。在众多新型器件中,一种突出的器件是平面光流体透镜。它在承载液体样品的衬底平面内操控光线。得益于其兼容性,平面光流体透镜可以集成到单个芯片中,无需复杂的手动对准,并且有望实现高集成密度。就可调谐性而言,平面液体透镜既可以通过使用多种微流体技术调节流体界面来进行调谐,也可以通过利用温度、电场和浓度调节液体的折射率来进行调谐。本文将从工作机制和最新进展方面对平面液体透镜进行综述。此外,还将讨论它们在芯片实验室系统中的应用。