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生物传感技术:表面等离子体耦合发射最新进展的重点综述

Biosensing Technologies: A Focus Review on Recent Advancements in Surface Plasmon Coupled Emission.

作者信息

Bhaskar Seemesh

机构信息

Nick Holonyak Jr. Micro and Nanotechnology Laboratory (HMNTL), University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.

Carl R. Woese Institute for Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.

出版信息

Micromachines (Basel). 2023 Feb 28;14(3):574. doi: 10.3390/mi14030574.

Abstract

In the past decade, novel nano-engineering protocols have been actively synergized with fluorescence spectroscopic techniques to yield higher intensity from radiating dipoles, through the process termed plasmon-enhanced fluorescence (PEF). Consequently, the limit of detection of analytes of interest has been dramatically improvised on account of higher sensitivity rendered by augmented fluorescence signals. Recently, metallic thin films sustaining surface plasmon polaritons (SPPs) have been creatively hybridized with such PEF platforms to realize a substantial upsurge in the global collection efficiency in a judicious technology termed surface plasmon-coupled emission (SPCE). While the process parameters and conditions to realize optimum coupling efficiency between the radiating dipoles and the plasmon polaritons in SPCE framework have been extensively discussed, the utility of disruptive nano-engineering over the SPCE platform and analogous interfaces such as 'ferroplasmon-on-mirror (FPoM)' as well as an alternative technology termed 'photonic crystal-coupled emission (PCCE)' have been seldom reviewed. In light of these observations, in this focus review, the myriad nano-engineering protocols developed over the SPCE, FPoM and PCCE platform are succinctly captured, presenting an emphasis on the recently developed cryosoret nano-assembly technology for photo-plasmonic hotspot generation (first to fourth). These technologies and associated sensing platforms are expected to ameliorate the current biosensing modalities with better understanding of the biophysicochemical processes and related outcomes at advanced micro-nano-interfaces. This review is hence envisaged to present a broad overview of the latest developments in SPCE substrate design and development for interdisciplinary applications that are of relevance in environmental as well as biological heath monitoring.

摘要

在过去十年中,新型纳米工程协议已与荧光光谱技术积极协同,通过称为等离子体增强荧光(PEF)的过程,从辐射偶极子产生更高的强度。因此,由于增强的荧光信号带来更高的灵敏度,感兴趣的分析物的检测限得到了显著改善。最近,维持表面等离子体激元(SPPs)的金属薄膜已与这种PEF平台进行创造性杂交,以在一种称为表面等离子体耦合发射(SPCE)的明智技术中实现全球收集效率的大幅提升。虽然在SPCE框架中实现辐射偶极子与等离子体激元之间最佳耦合效率的工艺参数和条件已得到广泛讨论,但颠覆性纳米工程在SPCE平台以及类似界面(如“镜上铁等离子体(FPoM)”)和另一种称为“光子晶体耦合发射(PCCE)”的替代技术上的应用却很少被综述。鉴于这些观察结果,在本重点综述中,简要介绍了在SPCE、FPoM和PCCE平台上开发的众多纳米工程协议,重点介绍了最近开发的用于光等离子体热点产生的低温索雷特纳米组装技术(第一至第四)。这些技术和相关的传感平台有望改善当前的生物传感模式,更好地理解先进微纳界面处的生物物理化学过程及相关结果。因此,本综述旨在对SPCE衬底设计与开发的最新进展进行广泛概述,这些进展对于环境和生物健康监测等跨学科应用具有相关性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f8c/10054051/7d0fee499e26/micromachines-14-00574-g001.jpg

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