LIMMS/CNRS-IIS, Institute of Industrial Science, University of Tokyo, Komaba 4-6-1, Meguro-ku, Tokyo, 153-8505, Japan.
Adv Biochem Eng Biotechnol. 2010;119:179-94. doi: 10.1007/10_2010_68.
Using unique physical phenomena at the microscale, such as laminar flow, mixing by diffusion, relative increase of the efficiency of heat exchange, surface tension and friction due to the increase of surface-to-volume ratio by downscaling, research in the field of microfluidic devices, aims at miniaturization of (bio)chemical apparatus for high-throughput analyses. Microchannel networks as core components of microfluidic devices are fabricated on various materials, such as silicon, glass, polymers, metals, etc., using microfabrication techniques adopted from the semiconductor industry and microelectromechanical systems (MEMS) technology, enabling integration of the components capable of performing various operations in microchannel networks. This chapter describes examples of diverse integrated microfluidic devices that incorporate functional components such as heaters for reaction temperature control, micropumps for liquid transportation, air vent structures for pneumatic manipulation of small volume droplets, optical fibers with aspherical lens structures for fluorescence detection, and electrochemical sensors for monitoring of glucose consumption during cell culture. The focus of this review is these integrated components and systems that realize useful functionalities for biochemical analyses.
利用微尺度特有的物理现象,如层流、扩散混合、因缩小尺寸而导致的热交换效率相对提高、表面张力和摩擦力,微流控器件领域的研究旨在实现(生物)化学仪器的小型化,以进行高通量分析。微通道网络作为微流控器件的核心组件,由各种材料(如硅、玻璃、聚合物、金属等)制成,采用源自半导体行业和微机电系统(MEMS)技术的微制造技术,实现了能够在微通道网络中执行各种操作的组件的集成。本章介绍了各种集成微流控器件的示例,这些器件集成了功能组件,如用于反应温度控制的加热器、用于液体输送的微泵、用于小体积液滴气动操作的通气结构、带有非球面透镜结构的光纤用于荧光检测,以及电化学传感器用于监测细胞培养过程中的葡萄糖消耗。本综述的重点是这些集成组件和系统,它们实现了生化分析的有用功能。