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基于亚波长光栅的硅光子倏逝场生物传感器优化框架

An Optimization Framework for Silicon Photonic Evanescent-Field Biosensors Using Sub-Wavelength Gratings.

机构信息

School of Biomedical Engineering, University of British Columbia, 251-2222 Health Sciences Mall, Vancouver, BC V6T 1Z3, Canada.

Centre for Blood Research, University of British Columbia, 2350 Health Sciences Mall, Vancouver, BC V6T 1Z3, Canada.

出版信息

Biosensors (Basel). 2022 Oct 8;12(10):840. doi: 10.3390/bios12100840.

Abstract

Silicon photonic (SiP) evanescent-field biosensors aim to combine the information-rich readouts offered by lab-scale diagnostics, at a significantly lower cost, and with the portability and rapid time to result offered by paper-based assays. While SiP biosensors fabricated with conventional strip waveguides can offer good sensitivity for label-free detection in some applications, there is still opportunity for improvement. Efforts have been made to design higher-sensitivity SiP sensors with alternative waveguide geometries, including sub-wavelength gratings (SWGs). However, SWG-based devices are fragile and prone to damage, limiting their suitability for scalable and portable sensing. Here, we investigate SiP microring resonator sensors designed with SWG waveguides that contain a "fishbone" and highlight the improved robustness offered by this design. We present a framework for optimizing fishbone-style SWG waveguide geometries based on numerical simulations, then experimentally measure the performance of ring resonator sensors fabricated with the optimized waveguides, targeting operation in the O-band and C-band. For the O-band and C-band devices, we report bulk sensitivities up to 349 nm/RIU and 438 nm/RIU, respectively, and intrinsic limits of detection as low as 5.1 × 10 RIU and 7.1 × 10 RIU, respectively. This performance is comparable to the state of the art in SWG-based sensors, positioning fishbone SWG resonators as an attractive, more robust, alternative to conventional SWG designs.

摘要

硅光子(SiP)倏逝场生物传感器旨在以更低的成本,结合实验室规模诊断提供的丰富信息,结合基于纸的分析所提供的便携性和快速结果,从而实现成本效益高的检测。虽然使用传统条形波导制造的 SiP 生物传感器在某些应用中可以提供无标记检测的良好灵敏度,但仍有改进的空间。已经做出了努力,设计了具有替代波导几何形状的更高灵敏度的 SiP 传感器,包括亚波长光栅(SWG)。然而,基于 SWG 的器件很脆弱,容易损坏,限制了它们在可扩展和便携传感方面的适用性。在这里,我们研究了设计有 SWG 波导的 SiP 微环谐振器传感器,其中包含“鱼骨”,并强调了这种设计所提供的增强的稳健性。我们提出了一种基于数值模拟优化鱼骨式 SWG 波导几何形状的框架,然后实验测量了用优化波导制造的环形谐振器传感器的性能,目标是在 O 波段和 C 波段运行。对于 O 波段和 C 波段器件,我们报告了高达 349nm/RIU 和 438nm/RIU 的体灵敏度,以及低至 5.1×10 RIU 和 7.1×10 RIU 的固有检测限。这种性能与基于 SWG 的传感器的最新水平相当,将鱼骨 SWG 谐振器定位为传统 SWG 设计的有吸引力的、更稳健的替代方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b729/9599562/ddae37c6f663/biosensors-12-00840-g001.jpg

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