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通过阴极发光实现纳米级激发和发射的同时映射。

Simultaneous Nanoscale Excitation and Emission Mapping by Cathodoluminescence.

机构信息

Department of Materials Science and Technology, School of Materials and Chemical Technology, Tokyo Institute of Technology, 4259 Nagatsuta Midoriku, Yokohama 226-8503, Japan.

ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels, Barcelona, Spain.

出版信息

ACS Nano. 2022 Dec 27;16(12):21462-21470. doi: 10.1021/acsnano.2c09973. Epub 2022 Nov 22.

Abstract

Free-electron-based spectroscopies can reveal the nanoscale optical properties of semiconductor materials and nanophotonic devices with a spatial resolution far beyond the diffraction limit of light. However, the retrieved spatial information is constrained to the excitation space defined by the electron beam position, while information on the delocalization associated with the spatial extension of the probed optical modes in the specimen has so far been missing, despite its relevance in ruling the optical properties of nanostructures. In this study, we demonstrate a cathodoluminescence method that can access both excitation and emission spaces at the nanoscale, illustrating the power of such a simultaneous excitation and emission mapping technique by revealing a subwavelength emission position modulation as well as by visualizing electromagnetic energy transport in nanoplasmonic systems. Besides the fundamental interest of these results, our technique grants us access into previously inaccessible nanoscale optical properties.

摘要

基于自由电子的光谱学可以揭示半导体材料和纳米光子器件的纳米光学性质,其空间分辨率远远超过光的衍射极限。然而,所恢复的空间信息仅限于电子束位置定义的激发空间,而与样品中被探测光学模式的空间扩展相关的离域信息迄今为止一直缺失,尽管它与控制纳米结构的光学性质有关。在这项研究中,我们展示了一种可以在纳米尺度上同时获取激发和发射空间的方法,通过揭示亚波长发射位置调制以及可视化纳米等离子体系统中的电磁能输运,说明了这种同时激发和发射映射技术的强大功能。除了这些结果的基础意义外,我们的技术还使我们能够进入以前无法进入的纳米光学性质领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1cc0/9799067/9a188c5d22bd/nn2c09973_0001.jpg

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