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一种大规模生产且多功能的传感系统:由单个波导模式激发的局域表面等离子体共振。

A Mass-Producible and Versatile Sensing System: Localized Surface Plasmon Resonance Excited by Individual Waveguide Modes.

机构信息

Department of Physics and Astronomy, The University of Western Ontario , 1151 Richmond Street, London, Ontario, Canada N6A 3K7.

Department of Chemistry, The University of Western Ontario , 1151 Richmond Street, London, Ontario, Canada N6A 5B7.

出版信息

ACS Sens. 2018 Feb 23;3(2):334-341. doi: 10.1021/acssensors.7b00736. Epub 2018 Jan 24.

Abstract

A plasmonic sensing system that allows the excitation of localized surface plasmon resonance (LSPR) by individual waveguide modes is presented conceptually and experimentally. Any change in the local environment of the gold nanoparticles (AuNPs) alters the degree of coupling between LSPR and a polymer slab waveguide, which then modulates the transmission-output signal. In comparison to conventional LSPR sensors, this system is less susceptible to optical noise and positional variation of signals. Moreover, it enables more freedom in the exploitation of plasmonic hot spots with both transverse electric (TE) and transverse magnetic (TM) modes. Through real-time measurement, it is demonstrated that the current sensing system is more sensitive than comparable optical fiber plasmonic sensors. The highest normalized bulk sensitivity (7.744 RIU) is found in the TM mode. Biosensing with the biotin-streptavidin system shows that the detection limit is on the order of 10 M of streptavidin. With further optimization, this sensing system can easily be mass-produced and incorporated into high throughput screening devices, detecting a variety of chemical and biological analytes via immobilization of the appropriate recognition sites.

摘要

提出了一种等离子体传感系统,该系统可以通过单个波导模式激发局域表面等离子体共振(LSPR)。金纳米粒子(AuNPs)的局部环境的任何变化都会改变 LSPR 与聚合物平板波导之间的耦合程度,从而调制传输输出信号。与传统的 LSPR 传感器相比,该系统不易受到光学噪声和信号位置变化的影响。此外,它还可以更自由地利用横向电场(TE)和横向磁场(TM)模式的等离子体热点。通过实时测量,证明了该电流传感系统比可比的光纤等离子体传感器更灵敏。在 TM 模式下,归一化体灵敏度(7.744 RIU)最高。生物素-链霉亲和素系统的生物传感表明,检测限为 10 M 级别的链霉亲和素。通过进一步优化,这种传感系统可以很容易地批量生产,并集成到高通量筛选设备中,通过适当的识别位点的固定化来检测各种化学和生物分析物。

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