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Nanofluidics meets Plasmonics: Flow-Through Surface-Based Sensing

机译:纳米流体与等离子技术相遇:基于表面的流式传感

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Nanoslructures exhibit both nanofluidic and nanophotonic phenomena that can be exploited in sensing applications. In the case of nanohole arrays, the role of surface plasmons on resonant transmission motivates their application as surface-based biosensors. Research to date, however, has focused on dead-ended (or 'blind') holes, and therefore failed to harness the benefits of nanoconfined transport combined with plasmonic sensing. A flow-through nanohole array format presented here enables biomarker sieving and rapid transport of reactants to the sensing surface. Proof of concept operation is demonstrated and compared with previous methods. The various transport mechanisms are characterized with the aim to utilize the metallic plasmonic nanostructure as an active element in concentrating as well as detecting analytes.The invited presentation will provide an overview of all our experimental, computational and analytical work in this area. This paper is focused on the analysis and evaluation of flow-through nanohole arrays for analyte sensing.
机译:纳米结构同时表现出纳米流体和纳米光子现象,可在传感应用中加以利用。在纳米孔阵列的情况下,表面等离子体激元在共振传输中的作用激发了它们作为基于表面的生物传感器的应用。但是,迄今为止的研究集中在死角(或“盲”)孔上,因此未能利用纳米限制传输与等离激元传感相结合的优势。此处介绍的流通式纳米孔阵列格式可实现生物标志物筛分,并将反应物快速传输到传感表面。演示了概念验证,并将其与以前的方法进行了比较。表征各种运输机制的目的是利用金属等离子体纳米结构作为浓缩和检测分析物的活性元素。 受邀的演讲将概述我们在该领域的所有实验,计算和分析工作。本文专注于分析物检测用流通式纳米孔阵列的分析和评估。

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