Schmidt Holger, Hawkins Aaron R
School of Engineering, MS: SOE-2, UC Santa Cruz, 1156 High Street, Santa Cruz, CA 95064, USA.
Microfluid Nanofluidics. 2008 Jan 1;4(1-2):3-16. doi: 10.1007/s10404-007-0199-7.
We review recent developments and current status of liquid-core optical waveguides in optofluidics with emphasis on suitability for creating fully planar optofluidic labs-on-a-chip. In this first of two contributions, we give an overview of the different waveguide types that are being considered for effectively combining micro and nanofluidics with integrated optics. The large number of approaches is separated into conventional index-guided waveguides and more recent implementations using wave interference. The underlying principle for waveguiding and the current status are described for each type. We then focus on reviewing recent work on microfabricated liquid-core antiresonant reflecting optical (ARROW) waveguides, including the development of intersecting 2D waveguide networks and optical fluorescence and Raman detection with planar beam geometry. Single molecule detection capability and addition of electrical control for electrokinetic manipulation and analysis of single bioparticles are demonstrated. The demonstrated performance of liquid-core ARROWs is representative of the potential of integrated waveguides for on-chip detection with ultrahigh sensitivity, and points the way towards the next generation of high-performance, low-cost and portable biomedical instruments.
我们回顾了光流体中液芯光波导的最新进展和现状,重点关注其对于创建全平面光流体芯片实验室的适用性。在这两篇系列文章的第一篇中,我们概述了为有效结合微纳流体与集成光学而正在考虑的不同波导类型。大量方法被分为传统的折射率引导波导和使用波干涉的最新实现方式。针对每种类型描述了波导的基本原理和当前状态。然后,我们着重回顾了关于微纳加工的液芯反谐振反射光学(ARROW)波导的近期工作,包括二维交叉波导网络的发展以及采用平面光束几何结构的光学荧光和拉曼检测。展示了单分子检测能力以及添加用于电动操纵和单个生物粒子分析的电控制功能。液芯ARROW波导所展示的性能代表了集成波导用于超高灵敏度芯片检测的潜力,并为下一代高性能、低成本和便携式生物医学仪器指明了方向。