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利用不同的紫外光固化光学胶与塑料光纤结合实现等离子体传感器性能分析。

Analysis of Plasmonic Sensors Performance Realized by Exploiting Different UV-Cured Optical Adhesives Combined with Plastic Optical Fibers.

机构信息

Department of Engineering, University of Campania Luigi Vanvitelli, Via Roma 29, 81031 Aversa, Italy.

出版信息

Sensors (Basel). 2023 Jul 6;23(13):6182. doi: 10.3390/s23136182.

Abstract

Polymer-based surface plasmon resonance (SPR) sensors can be used to realize simple, small-size, disposable, and low-cost biosensors for application in several fields, e.g., healthcare. The performance of SPR sensors based on optical waveguides can be changed by tuning several parameters, such as the dimensions and the shape of the waveguides, the refractive index of the core, and the metal nanofilms used to excite the SPR phenomenon. In this work, in order to develop, experimentally test, and compare several polymer-based plasmonic sensors, realized by using waveguides with different core refractive indices, optical adhesives and 3D printed blocks with a trench inside have been used. In particular, the sensors are realized by filling the blocks' trenches (with two plastic optical fibers located at the end of these) with different UV-cured optical adhesives and then covering them with the same bilayer to excite the SPR phenomenon. The developed SPR sensors have been characterized by numerical and experimental results. Finally, in order to propose photonic solutions for healthcare, a comparative analysis has been reported to choose the best sensor configuration useful for developing low-cost biosensors.

摘要

基于聚合物的表面等离子体共振 (SPR) 传感器可用于实现简单、小型、一次性和低成本的生物传感器,适用于多个领域,例如医疗保健。基于光波导的 SPR 传感器的性能可以通过调整几个参数来改变,例如波导的尺寸和形状、芯的折射率以及用于激发 SPR 现象的金属纳米膜。在这项工作中,为了开发、实验测试和比较几种基于聚合物的等离子体传感器,使用了具有不同芯折射率的光波导、光学胶和带有内部凹槽的 3D 打印块。特别是,通过用不同的紫外光固化光学胶填充块的凹槽(这些块的末端有两根塑料光纤),并用相同的双层覆盖它们来激发 SPR 现象,从而实现了传感器。开发的 SPR 传感器的特性通过数值和实验结果进行了描述。最后,为了提出用于医疗保健的光子解决方案,进行了比较分析以选择最适合用于开发低成本生物传感器的最佳传感器配置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8c1/10347040/3fe145e947c0/sensors-23-06182-g001.jpg

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