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手性和手性光学在等离子体纳米结构中的效应:基础、最新进展和展望。

Chirality and chiroptical effects in plasmonic nanostructures: fundamentals, recent progress, and outlook.

机构信息

Cavendish Laboratory, Department of Physics, University of Cambridge, J. J. Thomson Avenue, Cambridge CB3 0HE, UK.

出版信息

Adv Mater. 2013 May 14;25(18):2517-34. doi: 10.1002/adma.201205178. Epub 2013 Apr 2.

Abstract

Strong chiroptical effects recently reported result from the interaction of light with chiral plasmonic nanostructures. Such nanostructures can be used to enhance the chiroptical response of chiral molecules and could also significantly increase the enantiomeric excess of direct asymmetric synthesis and catalysis. Moreover, in optical metamaterials, chirality leads to negative refractive index and all the promising applications thereof. In this Progress Report, we highlight four different strategies which have been used to achieve giant chiroptical effects in chiral nanostructures. These strategies consecutively highlight the importance of chirality in the nanostructures (for linear and nonlinear chiroptical effects), in the experimental setup and in the light itself. Because, in the future, manipulating chirality will play an important role, we present two examples of chiral switches. Whereas in the first one, switching the chirality of incoming light causes a reversal of the handedness in the nanostructures, in the second one, switching the handedness of the nanostructures causes a reversal in the chirality of outgoing light.

摘要

最近报道的强手性光学效应源于光与手性等离子体纳米结构的相互作用。这种纳米结构可用于增强手性分子的手性光学响应,也可以显著提高直接不对称合成和催化的对映体过量。此外,在光学超材料中,手性导致负折射率,以及所有有前途的应用。在本进展报告中,我们重点介绍了四种不同的策略,这些策略用于在手性纳米结构中实现巨大的手性光学效应。这些策略依次强调了手性在纳米结构(线性和非线性手性光学效应)、实验装置和光本身中的重要性。因为在未来,操纵手性将发挥重要作用,我们提出了两个手性开关的例子。在第一个例子中,改变入射光的手性会导致纳米结构中手性的反转,而在第二个例子中,改变纳米结构的手性会导致出射光的手性反转。

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