首页> 外文期刊>RSC Advances >Investigation of dual-bend serpentine/spiral waveguides coupled to a microchannel system for competent, evanescent-wave-absorption-based, on-chip, biological-/chemical-sensing applications
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Investigation of dual-bend serpentine/spiral waveguides coupled to a microchannel system for competent, evanescent-wave-absorption-based, on-chip, biological-/chemical-sensing applications

机译:研究双弯折蛇形/螺旋形波导与微通道系统的耦合,用于基于e逝波吸收的,片上生物/化学传感应用

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U or C-shaped waveguides, coupled to analyte microchannels, have been shown to be very responsive to evanescent-wave-absorption-based sensing. However, due to only having a single C-bend length, for analyte interaction in earlier devices, there was always an opportunity to advance their evanescent-absorbance sensitivity, by including multiple C-bend structures (interfaced with the analyte microchannel system) in the device design. To achieve this objective, two different types of waveguide probes (having a different orientation of two C-bends), i.e. S-bend and spiral-bend, were theoretically analyzed and further, experimentally tested for their comparative sensitivity to evanescent wave absorption, in this pioneering study. A novel single-step fabrication procedure (using an SU-8 photoresist), was executed to fabricate these waveguide structures interfaced (both at their inner and outer bend surfaces) with a microchannel system, along with fiber-to-waveguide coupler structures. Experimentally, the sensitivity of the S-bend waveguides was found to be ~25% higher compared to that of spiral waveguides of similar dimensions, which corroborated the results from numerical modeling. Compared to our earlier embedded C-bend waveguides, the overall evanescent-wave-absorption-based detection sensitivity of the embedded spiral and S-bend waveguides were found to be improved by ~7.5 times and ~9 times respectively. Finally, these devices were found to be ideally suited for more sensitive biological-, as well as, chemical-sensing applications, provided a suitable surface alteration process is performed to these waveguide probes. Further, the proposed device has a possible capability for: facile continuous (real-time) analysis, a fixed sample volume interaction, and control over the evaporation of analyte samples introduced in to the device.
机译:已显示耦合到分析物微通道的U形或C形波导对基于e逝波吸收的传感非常敏感。但是,由于只有一个C弯曲长度,对于早期设备中的分析物相互作用,总是有机会通过在其设备中包括多个C弯曲结构(与分析物微通道系统连接)来提高其消逝吸收灵敏度。设备设计。为了实现这一目标,从理论上分析了两种不同类型的波导探头(两个C弯的方向不同),即S弯和螺旋弯,并通过实验测试了它们对e逝波吸收的比较敏感性。这项开创性的研究。执行了一种新颖的单步制造程序(使用SU-8光致抗蚀剂),以制造与微通道系统(纤维到波导耦合器结构)连接的波导结构(在其内部和外部弯曲表面处)。在实验中,与类似尺寸的螺旋形波导相比,S形弯曲波导的灵敏度提高了约25%,这证实了数值模拟的结果。与我们较早的嵌入式C形弯曲波导相比,嵌入式螺旋形和S形弯曲波导基于整体van逝波吸收的检测灵敏度分别提高了约7.5倍和约9倍。最后,只要对这些波导探针进行适当的表面改变工艺,这些设备就非常适合于更敏感的生物和化学传感应用。此外,所提出的设备具有以下能力:方便的连续(实时)分析,固定的样品体积相互作用以及控制引入设备的分析物样品的蒸发。

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