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通过光致磁性实现表面等离子体激元阻尼的主动调谐

Active Tuning of Plasmon Damping via Light Induced Magnetism.

作者信息

Cheng Oscar Hsu-Cheng, Zhao Boqin, Brawley Zachary, Son Dong Hee, Sheldon Matthew T

机构信息

Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.

Department of Materials Science and Engineering, Texas A&M University, College Station, Texas 77843, United States.

出版信息

Nano Lett. 2022 Jul 13;22(13):5120-5126. doi: 10.1021/acs.nanolett.2c00571. Epub 2022 Jun 27.

Abstract

Circularly polarized optical excitation of plasmonic nanostructures causes coherent circulating motion of their electrons, which in turn gives rise to strong optically induced magnetization, a phenomenon known as the inverse Faraday effect (IFE). In this study we report how the IFE also significantly decreases plasmon damping. By modulating the optical polarization state incident on achiral plasmonic nanostructures from linear to circular, we observe reversible increases of reflectance by up to 8% and simultaneous increases of optical field concentration by 35.7% under 10 W/m continuous wave (CW) optical excitation. These signatures of decreased plasmon damping were also monitored in the presence of an external magnetic field (0.2 T). We rationalize the observed decreases in plasmon damping in terms of the Lorentz forces acting on the circulating electron trajectories. Our results outline strategies for actively modulating intrinsic losses in the metal via optomagnetic effects encoded in the polarization state of incident light.

摘要

等离子体纳米结构的圆偏振光激发会导致其电子产生相干循环运动,进而引发强烈的光致磁化,这一现象被称为逆法拉第效应(IFE)。在本研究中,我们报告了IFE如何显著降低等离子体阻尼。通过将入射到手性等离子体纳米结构上的光偏振态从线性调制为圆形,我们观察到在10 W/m连续波(CW)光激发下,反射率可逆增加高达8%,同时光场集中度增加35.7%。在存在外部磁场(0.2 T)的情况下,也监测到了等离子体阻尼降低的这些特征。我们根据作用在循环电子轨迹上的洛伦兹力,对观察到的等离子体阻尼降低现象进行了合理的解释。我们的结果概述了通过入射光偏振态中编码的光磁效应来主动调制金属中固有损耗的策略。

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