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银分子纳米线中的电子束诱导分子等离子体激元激发与能量转移

Electron-Beam-Induced Molecular Plasmon Excitation and Energy Transfer in Silver Molecular Nanowires.

作者信息

Yu Tao, Lingerfelt David, Jakowski Jacek, Jabed Mohammed A, Ganesh Panchapakesan, Sumpter Bobby G

机构信息

Department of Chemistry, University of North Dakota, Grand Forks, North Dakota 58202, United States.

Center of Nanophase Materials Sciences, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, United States.

出版信息

J Phys Chem A. 2021 Jan 14;125(1):74-87. doi: 10.1021/acs.jpca.0c08314. Epub 2021 Jan 2.

DOI:10.1021/acs.jpca.0c08314
PMID:33389995
Abstract

We investigate (1) electron-beam-induced plasmon absorption spectra of Ag molecular nanowire dimers and (2) electron-beam-induced energy transfer between two nanowires. We employ linear-response time-dependent density functional theory (TDDFT) and real-time TDDFT methods to simulate the electron-beam-induced plasmonic excitations, dynamics, and corresponding electron energy loss spectrum for small models of a single molecular nanowire with four Ag atoms and for two Ag nanowires. An array of different relative orientations of nanowires and of different initial excitation conditions resulting from applying an electron beam at different positions with respect to the Ag nanowires is investigated. The results demonstrate (1) an electron beam can induce plasmonic excitations from the molecular Ag nanowire ground state to the excited states that are both optically allowed and forbidden, (2) a tunability for selective excitations that can be controlled by the position of a focused electron beam, and (3) kinetic and dynamic behaviors of time-dependent electron-beam-induced energy transfer between two Ag molecular nanowires depend on the position of the beam source and nanowire separation distance, providing insights into the spatial dependences of plasmonic couplings in nanowire arrays.

摘要

我们研究了(1)银分子纳米线二聚体的电子束诱导等离子体吸收光谱,以及(2)两根纳米线之间的电子束诱导能量转移。我们采用线性响应含时密度泛函理论(TDDFT)和实时TDDFT方法,对具有四个银原子的单个分子纳米线以及两根银纳米线的小模型,模拟电子束诱导的等离子体激发、动力学过程以及相应的电子能量损失谱。研究了纳米线的一系列不同相对取向,以及由于在相对于银纳米线的不同位置施加电子束而产生的不同初始激发条件。结果表明:(1)电子束可诱导从分子银纳米线基态到光学允许和禁戒激发态的等离子体激发;(2)可通过聚焦电子束的位置控制选择性激发的可调谐性;(3)两根银分子纳米线之间随时间变化的电子束诱导能量转移的动力学和动态行为取决于束源位置和纳米线间距,这为纳米线阵列中等离子体耦合的空间依赖性提供了见解。

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