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Particle simulation of plasmons.

Authors :
Ding, Wen Jun
Lim, Jeremy Zhen Jie
Do, Hue Thi Bich
Xiong, Xiao
Mahfoud, Zackaria
Png, Ching Eng
Bosman, Michel
Ang, Lay Kee
Wu, Lin
Source :
Nanophotonics (21928606); Sep2020, Vol. 9 Issue 10, p3303-3313, 11p
Publication Year :
2020

Abstract

Particle simulation has been widely used in studying plasmas. The technique follows the motion of a large assembly of charged particles in their self-consistent electric and magnetic fields. Plasmons, collective oscillations of the free electrons in conducting media such as metals, are connected to plasmas by very similar physics, in particular, the notion of collective charge oscillations. In many cases of interest, plasmons are theoretically characterized by solving the classical Maxwell's equations, where the electromagnetic responses can be described by bulk permittivity. That approach pays more attention to fields rather than motion of electrons. In this work, however, we apply the particle simulation method to model the kinetics of plasmons, by updating both particle position and momentum (Newton–Lorentz equation) and electromagnetic fields (Ampere and Faraday laws) that are connected by current. Particle simulation of plasmons can offer insights and information that supplement those gained by traditional experimental and theoretical approaches. Specifically, we present two case studies to show its capabilities of modeling single-electron excitation of plasmons, tracing instantaneous movements of electrons to elucidate the physical dynamics of plasmons, and revealing electron spill-out effects of ultrasmall nanoparticles approaching the quantum limit. These preliminary demonstrations open the door to realistic particle simulations of plasmons. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
21928606
Volume :
9
Issue :
10
Database :
Complementary Index
Journal :
Nanophotonics (21928606)
Publication Type :
Academic Journal
Accession number :
147152760
Full Text :
https://doi.org/10.1515/nanoph-2020-0067