Ozcelik Damla, Cai Hong, Leake Kaelyn D, Hawkins Aaron R, Schmidt Holger
School of Engineering, University of California-Santa Cruz, 1156 High Street, Santa Cruz, CA 95064, USA.
ECEn Department, 459 Clyde Building, Brigham Young University, Provo, UT 84602, USA.
Nanophotonics. 2017 Jul;6(4):647-661. doi: 10.1515/nanoph-2016-0156. Epub 2017 Mar 16.
Over the past decade, optofluidics has established itself as a new and dynamic research field for exciting developments at the interface of photonics, microfluidics, and the life sciences. The strong desire for developing miniaturized bioanalytic devices and instruments, in particular, has led to novel and powerful approaches to integrating optical elements and biological fluids on the same chip-scale system. Here, we review the state-of-the-art in optofluidic research with emphasis on applications in bioanalysis and a focus on waveguide-based approaches that represent the most advanced level of integration between optics and fluidics. We discuss recent work in photonically reconfigurable devices and various application areas. We show how optofluidic approaches have been pushing the performance limits in bioanalysis, e.g. in terms of sensitivity and portability, satisfying many of the key requirements for point-of-care devices. This illustrates how the requirements for bianalysis instruments are increasingly being met by the symbiotic integration of novel photonic capabilities in a miniaturized system.
在过去十年中,光流体学已成为一个全新且充满活力的研究领域,在光子学、微流体学和生命科学的交叉领域取得了令人瞩目的进展。特别是对开发小型化生物分析设备和仪器的强烈需求,催生了将光学元件和生物流体集成在同一芯片级系统上的新颖且强大的方法。在此,我们回顾光流体学研究的最新进展,重点关注其在生物分析中的应用,并聚焦于基于波导的方法,这些方法代表了光学与流体学集成的最先进水平。我们讨论了光子可重构设备和各个应用领域的近期工作。我们展示了光流体学方法如何在生物分析中突破性能极限,例如在灵敏度和便携性方面,满足了即时检测设备的许多关键要求。这说明了小型化系统中新型光子能力的共生集成如何越来越多地满足生物分析仪器的要求。