Exploration of the defect's effect on the mechanical properties of different orientated nanowires

H. F. Zhan, Y. T. Gu

Research output: Chapter in Book / Conference PaperConference Paperpeer-review

1 Citation (Scopus)

Abstract

![CDATA[Molecular dynamics (MD) simulations have been carried out to investigate the defect's effect on the mechanical properties of copper nanowire with different crystallographic orientations, under tensile deformation. Three different crystallographic orientations have been considered. The deformation mechanism has been carefully discussed. It is found that the Young's modulus is insensitive to the defect, even when the nanowire's crystallographic orientation is different. However, due to the defect's effect, the yield strength and yield strain appear a large decrease. The defects have played a role of dislocation sources, the slips or stacking faults are first generated around the locations of the defects. The necking locations have also been affected by different defects. Due to the surface defect, the plastic deformation has received a large influence for the 〈 001 〉 /{110} and 〈 110 〉 orientated nanowires, and a relative small influence is seen for the 〈111 〉 nanowire.]]
Original languageEnglish
Title of host publicationMechatronics and Materials Processing I: Selected, Peer Reviewed Papers from the 2011 International Conference on Mechatronics and Materials Processing (ICMMP 2011), November 18-20, 2011, Guangzhou, China
PublisherTrans Tech
Pages1239-1244
Number of pages6
ISBN (Print)9783037852385
DOIs
Publication statusPublished - 2011
EventInternational Conference on Mechatronics and Materials Processing -
Duration: 18 Nov 2011 → …

Publication series

Name
ISSN (Print)1022-6680

Conference

ConferenceInternational Conference on Mechatronics and Materials Processing
Period18/11/11 → …

Keywords

  • Young's modulus
  • copper
  • defects
  • deformations (mechanics)
  • mechanical properties
  • molecular dynamics
  • nanowires

Fingerprint

Dive into the research topics of 'Exploration of the defect's effect on the mechanical properties of different orientated nanowires'. Together they form a unique fingerprint.

Cite this