A fundamental numerical and theoretical study for the vibrational properties of nanowires


Autoria(s): Zhan, Haifei; Gu, YuanTong
Data(s)

18/06/2012

Resumo

Based on the molecular dynamics (MD) simulation and the classical Euler-Bernoulli beam theory, a fundamental study of the vibrational performance of the Ag nanowire (NW) is carried out. A comprehensive analysis of the quality (Q)-factor, natural frequency, beat vibration, as well as high vibration mode is presented. Two excitation approaches, i.e., velocity excitation and displacement excitation, have been successfully implemented to achieve the vibration of NWs. Upon these two kinds of excitations, consistent results are obtained, i.e., the increase of the initial excitation amplitude will lead to a decrease to the Q-factor, and moderate plastic deformation could increase the first natural frequency. Meanwhile, the beat vibration driven by a single relatively large excitation or two uniform excitations in both two lateral directions is observed. It is concluded that the nonlinear changing trend of external energy magnitude does not necessarily mean a nonconstant Q-factor. In particular, the first order natural frequency of the Ag NW is observed to decrease with the increase of temperature. Furthermore, comparing with the predictions by Euler- Bernoulli beam theory, the MD simulation provides a larger and smaller first vibration frequencies for the clamped-clamped and clamped-free thin Ag NWs, respectively. Additionally, for thin NWs, the first order natural frequency exhibits a parabolic relationship with the excitation magnitudes. The frequencies of the higher vibration modes tend to be low in comparison to Euler-Bernoulli beam theory predictions. A combined initial excitation is proposed which is capable to drive the NW under a multi-mode vibration and arrows the coexistence of all the following low vibration modes. This work sheds lights on the better understanding of the mechanical properties of NWs and benefits the increasing utilities of NWs in diverse nano-electronic devices.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/50963/

Publicador

American Institute of Physics

Relação

http://eprints.qut.edu.au/50963/1/jap_hf.pdf

DOI:10.1063/1.4729485

Zhan, Haifei & Gu, YuanTong (2012) A fundamental numerical and theoretical study for the vibrational properties of nanowires. Journal of Applied Physics, 111(12), p. 124303.

Direitos

Copyright 2012 American Institute of Physics.

Fonte

School of Chemistry, Physics & Mechanical Engineering; Faculty of Science and Technology

Palavras-Chave #091306 Microelectromechanical Systems (MEMS) #091307 Numerical Modelling and Mechanical Characterisation #100704 Nanoelectromechanical Systems #100712 Nanoscale Characterisation #nanowire #vibration #quality factor #natural frequency #beat #beam theory #molecular dynamics
Tipo

Journal Article