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通过等离子体纳米结构增强光的自旋轨道相互作用。

Enhancing spin-orbit interaction of light by plasmonic nanostructures.

机构信息

Department of Physical Sciences, IISER-Kolkata, BCKV Main Campus, Mohanpur, India.

出版信息

Opt Lett. 2013 May 15;38(10):1748-50. doi: 10.1364/OL.38.001748.

Abstract

The spin orbit interactions (SOI) of light mediated by single scattering from plasmon resonant metal nanoparticles (nanorods and nanospheres) are investigated using Jones and Mueller matrix polarimetry formalism. The effect of neighboring resonances in plasmonic nanostructures (e.g., orthogonal electric dipolar modes in rods or electric dipolar and quadrupolar modes in spheres) on the individual SOI effects are analyzed and interpreted via the Mueller matrix-derived polarimetry characteristics, namely, diattenuation d and retardance δ. The results clearly reveal that each of these can be controllably tuned and enhanced by exploiting the interference of neighboring modes.

摘要

采用琼斯矩阵和穆勒矩阵偏振术形式研究了由等离子体共振金属纳米粒子(纳米棒和纳米球)的单次散射介导的自旋轨道相互作用(SOI)。通过穆勒矩阵推导的偏振特性,即消光比 d 和延迟 δ,分析和解释了等离子体纳米结构中相邻共振(例如,棒中的正交电偶极子模式或球中的电偶极子和四极子模式)对单个 SOI 效应的影响。结果清楚地表明,通过利用相邻模式的干涉,可以对每个模式进行可控地调节和增强。

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