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In situ atomic-scale observation of grain size and twin thickness effect limit in twin-structural nanocrystalline platinum.
Wang, Lihua; Du, Kui; Yang, Chengpeng; Teng, Jiao; Fu, Libo; Guo, Yizhong; Zhang, Ze; Han, Xiaodong.
Afiliação
  • Wang L; Beijing Key Lab of Microstructure and Properties of Advanced Materials, Beijing University of Technology, 100022, Beijing, China.
  • Du K; Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 110016, Shenyang, China.
  • Yang C; Beijing Key Lab of Microstructure and Properties of Advanced Materials, Beijing University of Technology, 100022, Beijing, China.
  • Teng J; Department of Material Physics and Chemistry, University of Science and Technology Beijing, 100083, Beijing, China.
  • Fu L; Beijing Key Lab of Microstructure and Properties of Advanced Materials, Beijing University of Technology, 100022, Beijing, China.
  • Guo Y; Beijing Key Lab of Microstructure and Properties of Advanced Materials, Beijing University of Technology, 100022, Beijing, China.
  • Zhang Z; Department of Materials Science, Zhejiang University, 310008, Hangzhou, China. zezhang@zju.edu.cn.
  • Han X; Beijing Key Lab of Microstructure and Properties of Advanced Materials, Beijing University of Technology, 100022, Beijing, China. xdhan@bjut.edu.cn.
Nat Commun ; 11(1): 1167, 2020 Mar 03.
Article em En | MEDLINE | ID: mdl-32127536
ABSTRACT
Twin-thickness-controlled plastic deformation mechanisms are well understood for submicron-sized twin-structural polycrystalline metals. However, for twin-structural nanocrystalline metals where both the grain size and twin thickness reach the nanometre scale, how these metals accommodate plastic deformation remains unclear. Here, we report an integrated grain size and twin thickness effect on the deformation mode of twin-structural nanocrystalline platinum. Above a ∼10 nm grain size, there is a critical value of twin thickness at which the full dislocation intersecting with the twin plane switches to a deformation mode that results in a partial dislocation parallel to the twin planes. This critical twin thickness value varies from ∼6 to 10 nm and is grain size-dependent. For grain sizes between ∼10 to 6 nm, only partial dislocation parallel to twin planes is observed. When the grain size falls below 6 nm, the plasticity switches to grain boundary-mediated plasticity, in contrast with previous studies, suggesting that the plasticity in twin-structural nanocrystalline metals is governed by partial dislocation activities.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article