基于c形嵌入式聚合物波导的瞬变场吸收芯片生物传感器实验室

A. Prabhakar, S. Mukherji
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引用次数: 2

摘要

本文制作了一种嵌入c形波导的微流控芯片,并对其生物传感能力进行了研究。将微通道网络与c -弯曲波导耦合的一般制造过程是一个单步过程,其中光致抗蚀剂SU-8层被图案化成光学结构(c -弯曲波导)。使用单掩模(图1)的光纤波导耦合器和微通道网络结构(图2)。如图3和图4所示,测试了该装置对分析物折射率变化的灵敏度(通过不同浓度的蔗糖溶液)以及倏逝波吸收(通过不同浓度的亚甲基蓝染料溶液)。这些嵌入的c形波导探针利用人类IgG(HIgG) - FITC标记的山羊抗IgG(GaHIgG)生物分子作为生物受体-分析物对进行生物传感。在c型SU-8波导上固定HIgG时,甘氨酸用作交联剂,然后在波导表面应用碳二亚胺/琥珀酰亚胺化学。分析物(FITC标记的GaHIgG)通过嵌入c形波导的微通道。抗原-抗体的相互作用和结合导致FITC标记的GaHIgG生物分子对倏变场的吸收,导致被检测和校准的波导输出光强下降。结果表明,c型波导可以通过倏逝波吸收或波导周围微环境中与折射率相关的变化更容易地用于生物分子的灵敏生物传感。
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C-shaped embedded polymer waveguide for evanescent field absorption based lab on a chip biosensor
In this report a microfluidic chip with embedded C-shaped waveguides was fabricated and study was performed to determine its biosensing capabilities. The general fabrication procedure to couple the microchannel network with C-bend waveguides was a single step process in which the photo resist SU-8 layer was patterned into optical structures (C-bend waveguides), fiber-to-waveguide coupler and microchannel network structures (Fig. 2) using single mask (Fig. 1). The device was tested for sensitivity to refractive index variation in the analyte (by passing sucrose solutions of varying concentrations) as well as evanescent wave absorption (by passing various concentrations of Methylene Blue dye solutions) as explained in Fig 3 and Fig 4. These embedded C-shaped waveguide probes demonstrated biosensing with the help of Human IgG (HIgG) - FITC tagged goat anti IgG(GaHIgG) biomolecules as bioreceptor-analyte pair. For HIgG immobilization on C-shaped SU-8 waveguide the glycine was used as crosslinkers, before applying the carbodiimide/succinimide chemistry over the waveguide surface. The analyte (FITC tagged GaHIgG) was passed through the micro-channel embedded with the C-shaped waveguide. The antigen- antibody interaction and binding results in to the absorption of evanescent field by FITC tagged GaHIgG bio-molecule, causing a drop in light intensity output of the waveguide which was detected and calibrated. The results indicated that C-shaped waveguides can be used easily for more sensitive bio sensing of biomolecules either by evanescent wave absorption or by changes associated with refractive index in the microenvironment around a waveguide.
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