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响应性聚合物水凝胶的等离子体纳米材料用于传感和致动。

Plasmonic nanomaterials with responsive polymer hydrogels for sensing and actuation.

机构信息

Macromolecular Chemistry, Department of Chemistry and Biology, University of Siegen, Adolf Reichwein-Straße 2, 57074 Siegen, Germany.

Biosensor Technologies, AIT-Austrian Institute of Technology GmbH, Konrad-Lorenz-Straße 24, 3430 Tulln an der Donau, Austria.

出版信息

Chem Soc Rev. 2022 May 23;51(10):3926-3963. doi: 10.1039/d1cs01083b.

Abstract

Plasmonic nanomaterials have become an integral part of numerous technologies, where they provide important functionalities spanning from extraction and harvesting of light in thin film optical devices to probing of molecular species and their interactions on biochip surfaces. More recently, we witness increasing research efforts devoted to a new class of plasmonic nanomaterials that allow for on-demand tuning of their properties by combining metallic nanostructures and responsive hydrogels. This review addresses this recently emerged vibrant field, which holds potential to expand the spectrum of possible applications and deliver functions that cannot be achieved by separate research in each of the respective fields. It aims at providing an overview of key principles, design rules, and current implementations of both responsive hydrogels and metallic nanostructures. We discuss important aspects that capitalize on the combination of responsive polymer networks with plasmonic nanostructures to perform rapid mechanical actuation and actively controlled nanoscale confinement of light associated with resonant amplification of its intensity. The latest advances towards the implementation of such responsive plasmonic nanomaterials are presented, particularly covering the field of plasmonic biosensing that utilizes refractometric measurements as well as plasmon-enhanced optical spectroscopy readout, optically driven miniature soft actuators, and light-fueled micromachines operating in an environment resembling biological systems.

摘要

等离子体纳米材料已成为众多技术不可或缺的一部分,它们提供了从薄膜光学器件中的光提取和收集到生物芯片表面上的分子物种及其相互作用的探测等各种重要功能。最近,我们见证了越来越多的研究致力于一类新的等离子体纳米材料,这些材料通过将金属纳米结构和响应性水凝胶结合起来,允许对其性质进行按需调谐。本综述针对这一新兴的活跃领域,该领域有可能扩展可能的应用范围,并提供仅在各个领域分别研究无法实现的功能。它旨在概述响应性水凝胶和金属纳米结构的关键原理、设计规则和当前实现。我们讨论了利用响应性聚合物网络与等离子体纳米结构相结合以进行快速机械致动和主动控制与共振放大其强度相关的光的纳米级限制的重要方面。介绍了此类响应性等离子体纳米材料的最新进展,特别是涵盖了利用折光测量以及等离子体增强光学光谱读出、光驱动微型软致动器和在类似于生物系统的环境中运行的光燃料微机器的等离子体生物传感领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/03e8/9126188/86241ba233b8/d1cs01083b-f1.jpg

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