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具有聚合物微流体通道的光子晶体生物传感器的一步法制造与表征

Single-step fabrication and characterization of photonic crystal biosensors with polymer microfluidic channels.

作者信息

Choi Charles J, Cunningham Brian T

机构信息

Department of Electrical and Computer Engineering, University of Illinois at Urbana-Champaign, Nano Sensors Group, Micro and Nanotechnology Laboratory, 208 N. Wright St., Urbana, IL 61801, USA.

出版信息

Lab Chip. 2006 Oct;6(10):1373-80. doi: 10.1039/b603514k. Epub 2006 Aug 8.

Abstract

A method for simultaneously integrating label-free photonic crystal biosensor technology into microfluidic channels by a single-step replica molding process is presented. By fabricating both the sub-micron features of the photonic crystal sensor structure and the >10 microm features of a flow channel network in one step at room temperature on a plastic substrate, the sensors are automatically self-aligned with the flow channels, and patterns of arbitrary shape may be produced. By measuring changes in the resonant peak reflected wavelength from the photonic crystal structure induced by changes in dielectric permittivity within an evanescent field region near its surface, detection of bulk refractive index changes in the fluid channel or adsorption of biological material to the sensor surface is demonstrated. An imaging detection instrument is used to characterize the spatial distribution of the photonic crystal resonant wavelength, gathering thousands of independent sensor readings within a single fluid channel.

摘要

本文提出了一种通过单步复制成型工艺将无标记光子晶体生物传感器技术同时集成到微流体通道中的方法。通过在室温下于塑料基板上一步制造光子晶体传感器结构的亚微米特征和流道网络的大于10微米的特征,传感器可自动与流道自对准,并且可以产生任意形状的图案。通过测量由其表面附近倏逝场区域内介电常数变化引起的光子晶体结构反射的共振峰波长的变化,证明了对流体通道中体折射率变化或生物材料吸附到传感器表面的检测。使用成像检测仪器来表征光子晶体共振波长的空间分布,在单个流体通道内收集数千个独立的传感器读数。

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