等离子体纳米系统中的间隔和放大

M. Stockman
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引用次数: 0

摘要

利用受激辐射放大表面等离子体(spaser)是一种高强度相干局域光场的纳米级量子发生器。我们将考虑spaser理论的最新发展,并回顾目前可用的大量实验数据,纳米等离子体学处理金属纳米结构表面上的集体电子动力学,这是由于表面等离子体激元的激发而产生的[1,2]。表面等离子体将光能定位并集中在纳米级区域,从而产生高度增强的局部光场。它们经历着时间尺度短至几百阿秒的超快动力学。我们将首先简要概述纳米等离子体学的现状及其许多应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spasing and amplification in plasmonic nanosystems
Surface plasmon amplification by stimulated emission of radiation (spaser) is a nanoscopic quantum generator of coherent local optical fields with high intensity. We will consider the latest development in the theory of spaser and review the large number of experimental data currently available Nanoplasmonics deals with collective electron dynamics on the surface of metal nanostructures, which arises due to excitations called surface plasmons [1, 2]. The surface plasmons localize and concentrate optical energy in nanoscopic regions creating highly enhanced local optical fields. They undergo ultrafast dynamics with timescales as short as a few hundred attoseconds [3]. We will start with a brief overview of the state of nanoplasmonics and its many applications [2].
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