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Advances in Label-Free Detections for Nanofluidic Analytical Devices

机译:无标签检测纳米流体分析装置的进展

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摘要

Nanofluidics, a discipline of science and engineering of fluids confined to structures at the 1–1000 nm scale, has experienced significant growth over the past decade. Nanofluidics have offered fascinating platforms for chemical and biological analyses by exploiting the unique characteristics of liquids and molecules confined in nanospaces; however, the difficulty to detect molecules in extremely small spaces hampers the practical applications of nanofluidic devices. Laser-induced fluorescence microscopy with single-molecule sensitivity has been so far a major detection method in nanofluidics, but issues arising from labeling and photobleaching limit its application. Recently, numerous label-free detection methods have been developed to identify and determine the number of molecules, as well as provide chemical, conformational, and kinetic information of molecules. This review focuses on label-free detection techniques designed for nanofluidics; these techniques are divided into two groups: optical and electrical/electrochemical detection methods. In this review, we discuss on the developed nanofluidic device architectures, elucidate the mechanisms by which the utilization of nanofluidics in manipulating molecules and controlling light–matter interactions enhances the capabilities of biological and chemical analyses, and highlight new research directions in the field of detections in nanofluidics.
机译:纳米流体,一项科学和工程学科,限制在1-1000米规模的结构上,在过去十年中经历了显着的增长。纳米流体通过利用纳米空间内限制的液体和分子的独特特征,为化学和生物学分析提供了迷人的平台;然而,难以检测极小空间中的分子妨碍了纳米流体装置的实际应用。目前,激光诱导的荧光显微镜具有单分子敏感性的纳米流体的主要检测方法,但是标记和光漂白引起的问题限制了其应用。最近,已经开发了许多无标记的检测方法来识别和确定分子的数量,以及提供分子的化学,构象和动力学信息。本综述侧重于为纳米流体设计的无标签检测技术;这些技术分为两组:光学和电化学检测方法。在本文中,我们讨论了开发的纳米流体装置架构,阐明了利用纳米流体在操纵分子中的机制和控制浅品相互作用的机制增强了生物学和化学分析的能力,并突出了检测领域的新研究方向在纳米流体。

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