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等离激元学中的光与物质的手性转移

Light-to-matter chirality transfer in plasmonics.

作者信息

Santiago Eva Yazmin, Irfan Muhammad, Ávalos-Ovando Oscar, Govorov Alexander O, Correa-Duarte Miguel A, Besteiro Lucas V

机构信息

CINBIO, University of Vigo, Campus Universitario de Vigo, Lagoas Marcosende, 36310 Vigo, Spain.

Department of Physics and Astronomy, Ohio University, Athens, Ohio 45701, USA.

出版信息

Mater Horiz. 2025 Jul 14;12(14):4940-4969. doi: 10.1039/d5mh00179j.

Abstract

Plasmonic nanostructures are important tools in the study of chirality in the nanoscale. They are systems composed of conducting materials that support resonant excitations of the oscillatory motion of their conduction electrons. Exciting these plasmonic modes effectively localizes radiant energy in and around these nanostructures, which act as electromagnetic antennas operating in the UV-to-IR spectral range. Plasmonic systems can enhance the chiroptical activity of chiral molecules in near-field interaction with them, affording improved sensing capabilities at low analyte concentration or in samples with a low enantiomeric excess. They have also become an important platform through which to test and develop artificial materials with exceptionally large chiroptical activity, through the creation of plasmonic structures or assemblies with chiral geometries or arrangements. The fabrication of chiral plasmonic nanostructures employs a variety of techniques, the most common including the introduction of chiral asymmetry through top-down designs or introducing chiral molecules to direct the chiral growth of the structure. Recently, a different approach is being explored, which involves using chiral light as the only source of asymmetry in developing chiral plasmonic nanostructures. Chirality in this case arises from local transformations occurring on the surface or environment of the nanostructure, in a pattern that follows the local, chiral pattern of excitation induced by the impinging light. This article introduces and explores light-to-matter chirality transfer in plasmonics, contextualizes it within an introductory overview of light-matter interaction and chirality, reviews examples of this nascent technique and discusses its potential in exploiting different energy-transfer mechanisms supported by plasmonic nanostructures.

摘要

等离子体纳米结构是纳米尺度手性研究中的重要工具。它们是由导电材料组成的系统,能支持其传导电子振荡运动的共振激发。激发这些等离子体模式可有效地将辐射能局域在这些纳米结构及其周围,这些纳米结构就如同在紫外到红外光谱范围内工作的电磁天线。等离子体系统在与手性分子的近场相互作用中可增强其手性光学活性,在低分析物浓度或对映体过量低的样品中提供更好的传感能力。通过创建具有手性几何形状或排列的等离子体结构或组件,它们也已成为测试和开发具有异常大手性光学活性的人工材料的重要平台。手性等离子体纳米结构的制造采用多种技术,最常见的包括通过自上而下的设计引入手性不对称性或引入手性分子来指导结构的手性生长。最近,正在探索一种不同的方法,即在开发手性等离子体纳米结构时将手性光作为不对称性的唯一来源。在这种情况下,手性源于纳米结构表面或环境中发生的局部转变,其模式遵循由入射光诱导的局部手性激发模式。本文介绍并探讨了等离子体中的光到物质的手性转移,将其置于光与物质相互作用和手性的介绍性概述中进行背景化,回顾了这项新兴技术的实例,并讨论了其在利用等离子体纳米结构支持的不同能量转移机制方面的潜力。

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