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研究用于基于倏逝波吸收的高效片上生物/化学传感应用的、与微通道系统耦合的双弯蛇形/螺旋形波导。

Investigation of dual-bend serpentine/spiral waveguides coupled to a microchannel system for competent, evanescent-wave-absorption-based, on-chip, biological-/chemical-sensing applications.

作者信息

Prabhakar Amit, Mishra Neha, Verma Deepti, Mukherji Soumyo

机构信息

Department of Biosciences and Bioengineering, IIT Bombay Mumbai 400076 India

Indian Institute of Information Technology Allahabad Deoghat, Jhalwa Allahabad-211015 India.

出版信息

RSC Adv. 2018 Oct 17;8(62):35539-35550. doi: 10.1039/c8ra06527f. eCollection 2018 Oct 15.

Abstract

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), 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.

摘要

与分析物微通道耦合的U形或C形波导已被证明对基于倏逝波吸收的传感非常敏感。然而,由于早期设备中只有单个C形弯曲长度,在设备设计中通过包含多个C形弯曲结构(与分析物微通道系统相连),总是有机会提高其倏逝吸收灵敏度。为了实现这一目标,在这项开创性研究中,对两种不同类型的波导探头(两个C形弯曲具有不同的方向),即S形弯曲和螺旋形弯曲,进行了理论分析,并进一步对它们对倏逝波吸收的比较灵敏度进行了实验测试。采用一种新颖的单步制造工艺(使用SU-8光刻胶)来制造这些与微通道系统相连(在其内外弯曲表面)的波导结构以及光纤到波导的耦合器结构。实验发现,S形弯曲波导的灵敏度比类似尺寸的螺旋形波导高约25%,这证实了数值模拟的结果。与我们早期的嵌入式C形弯曲波导相比,嵌入式螺旋形和S形弯曲波导基于倏逝波吸收的整体检测灵敏度分别提高了约7.5倍和约9倍。最后,发现这些设备非常适合更灵敏的生物和化学传感应用,前提是对这些波导探头进行适当的表面改性处理。此外,所提出的设备具有以下潜在能力:便于连续(实时)分析、固定样品体积相互作用以及控制引入设备中的分析物样品的蒸发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/23c3/9088425/c2bd84f1ac10/c8ra06527f-f1.jpg

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