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全介质荧光增强超表面的设计与优化:迈向先进的超表面辅助光电器件。

Design and Optimization of All-Dielectric Fluorescence Enhancing Metasurfaces: Towards Advanced Metasurface-Assisted Optrodes.

机构信息

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.

Multi-Disciplinary Physics Laboratory, Optics and Fiber Optics Group, Faculty of Sciences, Lebanese University, Beirut 1500, Lebanon.

出版信息

Biosensors (Basel). 2022 Apr 21;12(5):264. doi: 10.3390/bios12050264.

Abstract

The need for miniaturized biological sensors which can be easily integrated into medical needles and catheters for in vivo liquid biopsies with ever-increasing performances has stimulated the interest of researchers in lab-on-fiber (LOF) technology. LOF devices arise from the integration of functional materials at the nanoscale on the tip of optical fibers, thus endowing a simple optical fiber with advanced functionalities and enabling the realization of high-performance LOF biological sensors. Consequently, in 2017, we demonstrated the first optical fiber meta-tip (OFMT), consisting of the integration of plasmonic metasurfaces (MSs) on the optical fiber end-face which represented a major breakthrough along the LOF technology roadmap. Successively, we demonstrated that label-free biological sensors based on the plasmonic OFMT are able to largely overwhelm the performance of a standard plasmonic LOF sensor, in view of the extraordinary light manipulation capabilities of plasmonic array exploiting phase gradients. To further improve the overall sensitivity, a labelled sensing strategy is here suggested. To this end, we envision the possibility to realize a novel class of labelled LOF optrodes based on OFMT, where an all-dielectric MS, designed to enhance the fluorescence emission by a labelled target molecule, is integrated on the end-face of a multimode fiber (MMF). We present a numerical environment to compute the fluorescence enhancement factor collected by the MMF, when on its tip a Silicon MS is laid, consisting of an array of cylindrical nanoantennas, or of dimers or trimers of cylindrical nanoantennas. According to the numerical results, a suitable design of the dielectric MS allows for a fluorescence enhancement up to three orders of magnitudes. Moreover, a feasibility study is carried out to verify the possibility to fabricate the designed MSs on the termination of multimode optical fibers using electron beam lithography followed by reactive ion etching. Finally, we analyze a real application scenario in the field of biosensing and evaluate the degradation in the fluorescence enhancement performances, taking into account the experimental conditions. The present work, thus, provides the main guidelines for the design and development of advanced LOF devices based on the fluorescence enhancement for labelled biosensing applications.

摘要

需要能够集成到医用针和导管中的微型化生物传感器,以便进行性能不断提高的活体液体活检,这激发了研究人员对光纤上实验室(LOF)技术的兴趣。LOF 设备源自于在光纤尖端整合纳米尺度的功能材料,从而使简单的光纤具有先进的功能,并实现高性能的 LOF 生物传感器。因此,在 2017 年,我们展示了第一个光纤尖端元(OFMT),它由在光纤端面集成等离子体超表面(MS)组成,这是沿着 LOF 技术路线图取得的重大突破。随后,我们证明了基于等离子体 OFMT 的无标记生物传感器在很大程度上能够超越标准等离子体 LOF 传感器的性能,这是因为利用相位梯度的等离子体阵列具有非凡的光操控能力。为了进一步提高整体灵敏度,这里提出了一种标记传感策略。为此,我们设想有可能基于 OFMT 实现一类新型的标记 LOF 光电器件,其中一种全介质 MS 被集成在多模光纤(MMF)的端面上,用于增强标记靶分子的荧光发射。我们提出了一个数值环境,用于计算当 MMF 尖端放置硅 MS 时收集的荧光增强因子,该硅 MS 由圆柱形纳米天线阵列、圆柱形纳米天线二聚体或三聚体组成。根据数值结果,适当设计的介质 MS 可使荧光增强高达三个数量级。此外,还进行了一项可行性研究,以验证使用电子束光刻和反应离子刻蚀在多模光纤末端制造设计的 MS 的可能性。最后,我们分析了生物传感领域的一个实际应用场景,并评估了考虑实验条件时荧光增强性能的退化。因此,本工作为基于荧光增强的用于标记生物传感应用的先进 LOF 器件的设计和开发提供了主要指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b15/9138857/53aa62c51ae8/biosensors-12-00264-g001.jpg

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