Enhanced Fiber Long‐Range Surface Plasmon Sensing Enabled by Resonance Coupling to Surface Plasmon Polaritons

Penglei Li, Lixia Li, Xue-wen Zong, Linlin Zhao, Fugui Lei, Yufang Liu
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Abstract

A tunable fiber optic (FO) long‐range surface plasmon (LRSP) sensor with strong coupling is developed and demonstrated theoretically in this article. The sensor consists of a square lattice array of Ag nanodisks resting on the FO end face. Utilizing nanodisks with small diameters leads to the pronounced excitation of two distinct and independent resonant modes: surface plasmon polaritons (SPP) and LRSP. A systematic investigation is performed to evaluate the sensing performance and capabilities of the sensor, focusing on its bulk and surface sensitivity. Significantly, the LRSP mode demonstrates high sensitivity and favorable linearity in response to refractive index (RI) changes, with an exceptionally high figure of merit (FOM). On the contrary, the SPP mode is regarded as an ideal self‐referencing mode due to its immunity to RI fluctuations. The enlargement of nanodisks diameters results in a swift redshift in the LRSP wavelength, leading to a strong coupling with the SPP mode. This coupling facilitates the transfer of electric fields within the SPP mode, promotes sensing capabilities, and enables the realization of dual‐channel sensing functionality. The occurrence of strong coupling phenomena along with the use of FO substrates provides an innovative option for achieving multifunctionality and miniaturization in sensor platforms.
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通过与表面等离子体极化子的共振耦合实现增强型光纤长距离表面等离子体传感
本文开发并从理论上证明了一种具有强耦合性的可调光纤(FO)长程表面等离子体(LRSP)传感器。该传感器由位于光纤端面的正方形银纳米盘晶格阵列组成。利用小直径纳米盘可明显激发两种不同的独立共振模式:表面等离子体极化子(SPP)和 LRSP。系统研究评估了传感器的传感性能和能力,重点关注其主体和表面灵敏度。值得注意的是,LRSP 模式在响应折射率(RI)变化时表现出高灵敏度和良好的线性度,具有极高的优点系数(FOM)。相反,SPP 模式由于不受 RI 波动的影响,被视为理想的自参照模式。纳米磁盘直径的增大导致 LRSP 波长的迅速重移,从而与 SPP 模式产生强烈耦合。这种耦合促进了 SPP 模式内的电场传递,提高了传感能力,并实现了双通道传感功能。强耦合现象的出现以及 FO 基底的使用为实现传感器平台的多功能化和微型化提供了一种创新选择。
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