Key Laboratory of Artificial Micro- and Nano- Structures of Ministry of Education, School of Physics & Technology, Wuhan University, Wuhan 430072, China.
State Key Laboratory of Virology and Hubei Key Laboratory of Cell Homeostasis, College of Life Sciences, Wuhan University, Wuhan, 430072, China.
Lab Chip. 2017 Mar 29;17(7):1280-1286. doi: 10.1039/c7lc00078b.
A gradient refractive index (GRIN) lens has a great potential for on-chip imaging and detection systems because of its flat surface with reduced defects. This paper reports a liquid thermal GRIN lens prepared using heat conduction between only one liquid, and uses it as a tunable optical tweezer for single living cell trapping in a flowing environment. This liquid GRIN lens consists of a trapezoidal region in the upper layer which is used to establish a GRIN profile by the heat conduction between three streams of benzyl alcohol with different temperatures, and subsequently a rhombus region in the lower layer with compensation liquids to form a steady square-law parabolic refractive index profile only in transverse direction. Simulations and experiments successfully show the real-time tunability of the focusing properties. The focal length can be modulated in the range of 500 μm with the minimum focal length of 430 μm. A considerable high enhancement factor achieves 5.4 whereas the full width at half maximum is 4 μm. The response time of the GRIN lens is about 20 ms. Based on this enhancement, tunable optical trapping for single human embryonic kidney 293 cell in the range of 280 μm is demonstrated by varying the focal length and working distance which is difficult for solid optical tweezers. The considerable quality of this liquid GRIN lens indicates on-chip applications especially in high quality optical imaging, detection and cells' handling.
梯度折射率 (GRIN) 透镜由于其具有平坦的表面和减少缺陷的特点,在片上成像和检测系统中有很大的应用潜力。本文报道了一种使用仅一种液体之间的热传导制备的液体热 GRIN 透镜,并将其用作在流动环境中单活细胞捕获的可调谐光学镊子。这种液体 GRIN 透镜由上层的梯形区域组成,该区域通过三个不同温度的苯甲醇流之间的热传导来建立 GRIN 分布,然后在下层的菱形区域中使用补偿液体形成仅在横向方向上稳定的平方律抛物线折射率分布。模拟和实验成功地展示了聚焦特性的实时可调性。焦距可在 500μm 的范围内调节,最小焦距为 430μm。相当高的增强因子达到 5.4,而半峰全宽为 4μm。GRIN 透镜的响应时间约为 20ms。基于这种增强,通过改变焦距和工作距离,可以实现范围在 280μm 的单个人胚胎肾 293 细胞的可调谐光学捕获,这对于固体光学镊子来说是困难的。这种液体 GRIN 透镜的相当好的质量表明了其在片上应用的潜力,特别是在高质量的光学成像、检测和细胞处理方面。