A quasi-3D fano resonance cavity on optical fiber end-facet for high signal-to-noise ratio dip-and-read surface plasmon sensing

Xiaqing Sun, Zeyu Lei, Hao Zhong, Chenjia He, Sihang Liu, Qingfeng Meng, Qingwei Liu, Shengfu Chen, Xiangyang Kong, Tian Yang
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引用次数: 6

Abstract

Surface plasmon devices mounted at the end-facets of optical fibers are appealing candidates for rapid and pointof-care sensing applications, by offering a special dip-and-read operation mode. At present, these devices’ noiseequivalent limits-of-detection lag far behind the free-space counterparts, leaving them incapable of most biosensing applications. Here we report a quasi-3D Fano resonance cavity and its fabrication method to fundamentally improve the quality factor and coupling efficiency for fiber-coupled surface plasmon resonance. In this device, the Fano resonance combines the high coupling efficiency of a Fabry-Pérot etalon and the high quality factor resonance of a plasmonic crystal cavity. The quasi-3D device was fabricated on a planar substrate and transferred to a single-mode fiber end-facet, which requires a low-adhesion yet surface-plasmon-tunneling interface between the device and the planar substrate. Such an interface was realized with a nanocap-slit unit structure, of which the plasmonic crystal was consisted. A noise-equivalent limit of detection of ~ 10 RIU was experimentally obtained, allowing bovine serum albumin physical adsorption to be distinguished at ng mL level concentrations. Therefore, breaking through the long-standing signal-to-noise ratio bottleneck, this work makes fiber end-facet surface plasmon devices into one of high sensitivity label-free sensing technologies. At the same time, it provides an enabling top-down fabrication technology for making 3D plasmonic structures on fiber endfacets at the nanometer scale.
用于高信噪比浸读表面等离子体传感的光纤端面准三维法诺谐振腔
安装在光纤端面的表面等离子体器件通过提供特殊的浸入和读取操作模式,成为快速和点对点传感应用的有吸引力的候选者。目前,这些设备的噪声当量检测限制远远落后于自由空间设备,使它们无法用于大多数生物传感应用。本文报道了一种准三维法诺谐振腔及其制备方法,从根本上提高了光纤耦合表面等离子体共振的质量因子和耦合效率。在该装置中,法诺共振结合了法布里-帕姆罗标准子的高耦合效率和等离子体晶体腔的高质量因数共振。准三维器件被制作在平面衬底上并转移到单模光纤端面,这要求器件与平面衬底之间具有低粘附但表面等离子体隧穿的界面。这种界面是用纳米帽-狭缝单元结构实现的,等离子体晶体由该单元结构组成。实验获得了~ 10 RIU的噪声等效检测限,使牛血清白蛋白在ng mL浓度下的物理吸附得以区分。因此,本工作突破了长期存在的信噪比瓶颈,使光纤端面表面等离子体器件成为高灵敏度无标签传感技术之一。同时,为在纳米尺度上在光纤端面上制作三维等离子体结构提供了一种自顶向下的制造技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
10.90
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