Molecular dynamics simulation of fracture strength and morphology of defective graphene


Autoria(s): Wang, Mingchao; Yan, Cheng; Galpaya, Dilini; Lai, Zheng Bo; Ma, Lin; Hu, Ning; Yuan, Qiang; Bai, Ruixiang; Zhou, Limin
Data(s)

23/03/2013

Resumo

Different types of defects can be introduced into graphene during material synthesis, and significantly influence the properties of graphene. In this work, we investigated the effects of structural defects, edge functionalisation and reconstruction on the fracture strength and morphology of graphene by molecular dynamics simulations. The minimum energy path analysis was conducted to investigate the formation of Stone-Wales defects. We also employed out-of-plane perturbation and energy minimization principle to study the possible morphology of graphene nanoribbons with edge-termination. Our numerical results show that the fracture strength of graphene is dependent on defects and environmental temperature. However, pre-existing defects may be healed, resulting in strength recovery. Edge functionalization can induce compressive stress and ripples in the edge areas of graphene nanoribbons. On the other hand, edge reconstruction contributed to the tensile stress and curved shape in the graphene nanoribbons.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/61594/

Publicador

Trans Tech Publications

Relação

http://eprints.qut.edu.au/61594/2/61954.pdf

DOI:10.4028/www.scientific.net/JNanoR.23.43

Wang, Mingchao, Yan, Cheng, Galpaya, Dilini, Lai, Zheng Bo, Ma, Lin, Hu, Ning, Yuan, Qiang, Bai, Ruixiang, & Zhou, Limin (2013) Molecular dynamics simulation of fracture strength and morphology of defective graphene. Journal of Nano Research, 23, pp. 43-49.

Direitos

Copyright 2013 Trans Tech Publications

Fonte

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

Palavras-Chave #091205 Functional Materials #091307 Numerical Modelling and Mechanical Characterisation #Graphene #Defects #Morphology #Molecular Dynamics Simulation
Tipo

Journal Article