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单等离激元球形粒子中的圆偏振转换

Circular Polarization Conversion in Single Plasmonic Spherical Particles.

作者信息

Khan Pritam, Brennan Grace, Li Zhe, Al Hassan Luluh, Rice Daragh, Gleeson Matthew, Mani Aladin A, Tofail Syed A M, Xu Hongxing, Liu Ning, Silien Christophe

机构信息

Department of Physics and Bernal Institute, University of Limerick, Limerick V94 T9PX, Ireland.

School of Physics and Technology, Institute for Advanced Studies and Center for Nanoscience and Nanotechnology, Wuhan University, Wuhan, 430072, China.

出版信息

Nano Lett. 2022 Feb 23;22(4):1504-1510. doi: 10.1021/acs.nanolett.1c03848. Epub 2022 Feb 3.

Abstract

Temporal and spectral behaviors of plasmons determine their ability to enhance the characteristics of metamaterials tailored to a wide range of applications, including electric-field enhancement, hot-electron injection, sensing, as well as polarization and angular momentum manipulation. We report a dark-field (DF) polarimetry experiment on single particles with incident circularly polarized light in which gold nanoparticles scatter with opposite handedness at visible wavelengths. Remarkably, for silvered nanoporous silica microparticles, the handedness conversion occurs at longer visible wavelengths, only after adsorption of molecules on the silver. Finite element analysis (FEA) allows matching the circular polarization (CP) conversion to dominant quadrupolar contributions, determined by the specimen size and complex susceptibility. We hypothesize that the damping accompanying the adsorption of molecules on the nanostructured silver facilitates the CP conversion. These results offer new perspectives in molecule sensing and materials tunability for light polarization conversion and control of light spin angular momentum at submicroscopic scale.

摘要

等离激元的时间和光谱行为决定了它们增强超材料特性的能力,这些超材料适用于广泛的应用,包括电场增强、热电子注入、传感以及偏振和角动量操纵。我们报道了一项暗场(DF)偏振实验,该实验使用圆偏振光入射单个粒子,其中金纳米粒子在可见光波长下以相反的手性散射。值得注意的是,对于镀银的纳米多孔二氧化硅微粒,只有在分子吸附到银上之后,手性转换才会在更长的可见光波长处发生。有限元分析(FEA)能够将圆偏振(CP)转换与由样品尺寸和复磁化率决定的主要四极贡献相匹配。我们假设分子吸附在纳米结构银上时伴随的阻尼促进了CP转换。这些结果为分子传感以及亚微观尺度下光偏振转换和光自旋角动量控制的材料可调性提供了新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3f5/8880373/7394de836b6d/nl1c03848_0001.jpg

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