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纳米级等离子体近场中的自发和受激电子-光子相互作用。

Spontaneous and stimulated electron-photon interactions in nanoscale plasmonic near fields.

作者信息

Liebtrau Matthias, Sivis Murat, Feist Armin, Lourenço-Martins Hugo, Pazos-Pérez Nicolas, Alvarez-Puebla Ramon A, de Abajo F Javier García, Polman Albert, Ropers Claus

机构信息

Center for Nanophotonics, AMOLF, 1098 XG, Amsterdam, The Netherlands.

4th Physical Institute-Solids and Nanostructures, University of Göttingen, 37077, Göttingen, Germany.

出版信息

Light Sci Appl. 2021 Apr 15;10(1):82. doi: 10.1038/s41377-021-00511-y.

Abstract

The interplay between free electrons, light, and matter offers unique prospects for space, time, and energy resolved optical material characterization, structured light generation, and quantum information processing. Here, we study the nanoscale features of spontaneous and stimulated electron-photon interactions mediated by localized surface plasmon resonances at the tips of a gold nanostar using electron energy-loss spectroscopy (EELS), cathodoluminescence spectroscopy (CL), and photon-induced near-field electron microscopy (PINEM). Supported by numerical electromagnetic boundary-element method (BEM) calculations, we show that the different coupling mechanisms probed by EELS, CL, and PINEM feature the same spatial dependence on the electric field distribution of the tip modes. However, the electron-photon interaction strength is found to vary with the incident electron velocity, as determined by the spatial Fourier transform of the electric near-field component parallel to the electron trajectory. For the tightly confined plasmonic tip resonances, our calculations suggest an optimum coupling velocity at electron energies as low as a few keV. Our results are discussed in the context of more complex geometries supporting multiple modes with spatial and spectral overlap. We provide fundamental insights into spontaneous and stimulated electron-light-matter interactions with key implications for research on (quantum) coherent optical phenomena at the nanoscale.

摘要

自由电子、光和物质之间的相互作用为空间、时间和能量分辨的光学材料表征、结构化光生成和量子信息处理提供了独特的前景。在这里,我们使用电子能量损失谱(EELS)、阴极发光光谱(CL)和光子诱导近场电子显微镜(PINEM)研究了金纳米星尖端局域表面等离子体共振介导的自发和受激电子 - 光子相互作用的纳米级特征。在数值电磁边界元法(BEM)计算的支持下,我们表明EELS、CL和PINEM探测的不同耦合机制对尖端模式的电场分布具有相同的空间依赖性。然而,发现电子 - 光子相互作用强度随入射电子速度而变化,这由平行于电子轨迹的电近场分量的空间傅里叶变换确定。对于紧密限制的等离子体尖端共振,我们的计算表明在低至几keV的电子能量下存在最佳耦合速度。我们在支持具有空间和光谱重叠的多种模式的更复杂几何结构的背景下讨论了我们的结果。我们提供了对自发和受激电子 - 光 - 物质相互作用的基本见解,对纳米级(量子)相干光学现象的研究具有关键意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a12/8050270/17765fe67594/41377_2021_511_Fig1_HTML.jpg

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