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基于全内反射的生物芯片,其利用带有微镜侧壁的聚合物填充腔。

Total internal reflection-based biochip utilizing a polymer-filled cavity with a micromirror sidewall.

作者信息

Chronis Nikolas, Lee Luke P

机构信息

Berkeley Sensor and Actuator Center, Department of Bioengineering, University of California, Berkeley, USA.

出版信息

Lab Chip. 2004 Apr;4(2):125-30. doi: 10.1039/b311088e. Epub 2004 Feb 17.

Abstract

A total internal reflection (TIR)-based biochip utilizing a polymer-filled cavity with a micromirror sidewall has been designed and fabricated. The implementation of the micromirror sidewall cavity facilitates precise alignment of the excitation light beam into the system. The incident angle of illumination can be easily modified by selecting polymers of different indices of refraction while optical losses are minimized. The design enables the hybrid, vertical integration of a laser diode and a CCD camera, resulting in a compact optical system. Brownian motion of fluorescent microspheres and real-time photobleaching of rhodamine 6G molecules is demonstrated. The proposed TIR-based chip simplifies current TIR optical configurations and could potentially be used as an optical-microfluidic platform for an integrated lab-on-a-chip microsystem.

摘要

一种基于全内反射(TIR)的生物芯片已被设计并制造出来,该芯片利用了带有微镜侧壁的聚合物填充腔。微镜侧壁腔的实现有助于将激发光束精确对准系统。通过选择不同折射率的聚合物,可以轻松改变照明的入射角,同时将光损耗降至最低。该设计实现了激光二极管和电荷耦合器件(CCD)相机的混合垂直集成,从而形成了一个紧凑的光学系统。文中展示了荧光微球的布朗运动以及罗丹明6G分子的实时光漂白现象。所提出的基于TIR的芯片简化了当前的TIR光学配置,并有可能用作集成芯片实验室微系统的光微流体平台。

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