Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics Simulations

The single-layer molybdenum disulfide (SLMoS2) nanosheets have been experimentally discovered to exist in two different polymorphs, which exhibit different electrical properties, metallic or semiconducting. Herein, molecular dynamics (MD) simulations of nanoindentation and uniaxial compression were...

Full description

Bibliographic Details
Main Authors: Haosheng Pang, Minglin Li, Chenghui Gao, Haili Huang, Weirong Zhuo, Jianyue Hu, Yaling Wan, Jing Luo, Weidong Wang
Format: Article
Language:English
Published: MDPI AG 2018-03-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/11/4/502
id doaj-860e43f514ca40079bd9ec53fe0c43ff
record_format Article
spelling doaj-860e43f514ca40079bd9ec53fe0c43ff2020-11-24T21:11:14ZengMDPI AGMaterials1996-19442018-03-0111450210.3390/ma11040502ma11040502Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics SimulationsHaosheng Pang0Minglin Li1Chenghui Gao2Haili Huang3Weirong Zhuo4Jianyue Hu5Yaling Wan6Jing Luo7Weidong Wang8School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, ChinaSchool of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, ChinaSchool of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, ChinaSchool of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, ChinaSchool of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, ChinaFujian Province Special Equipment Inspection Institute, Fuzhou 35002, ChinaBAK Power Battery Company, Shenzhen 518000, ChinaSchool of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, ChinaSchool of Mechano-Electronic Engineering, Xidian University, Xi’an 710071, ChinaThe single-layer molybdenum disulfide (SLMoS2) nanosheets have been experimentally discovered to exist in two different polymorphs, which exhibit different electrical properties, metallic or semiconducting. Herein, molecular dynamics (MD) simulations of nanoindentation and uniaxial compression were conducted to investigate the phase transition of SLMoS2 nanosheets. Typical load–deflection curves, stress–strain curves, and local atomic structures were obtained. The loading force decreases sharply and then increases again at a critical deflection under the nanoindentation, which is inferred to the phase transition. In addition to the layer thickness, some related bond lengths and bond angles were also found to suddenly change as the phase transition occurs. A bell-like hollow, so-called residual deformation, was found to form, mainly due to the lattice distortion around the waist of the bell. The effect of indenter size on the residual hollow was also analyzed. Under the uniaxial compression along the armchair direction, a different phase transition, a uniformly quadrilateral structure, was observed when the strain is greater than 27.7%. The quadrilateral structure was found to be stable and exhibit metallic conductivity in view of the first-principle calculation.http://www.mdpi.com/1996-1944/11/4/502MoS2phase transitionmolecular dynamicsnanoindentationuniaxial compression
collection DOAJ
language English
format Article
sources DOAJ
author Haosheng Pang
Minglin Li
Chenghui Gao
Haili Huang
Weirong Zhuo
Jianyue Hu
Yaling Wan
Jing Luo
Weidong Wang
spellingShingle Haosheng Pang
Minglin Li
Chenghui Gao
Haili Huang
Weirong Zhuo
Jianyue Hu
Yaling Wan
Jing Luo
Weidong Wang
Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics Simulations
Materials
MoS2
phase transition
molecular dynamics
nanoindentation
uniaxial compression
author_facet Haosheng Pang
Minglin Li
Chenghui Gao
Haili Huang
Weirong Zhuo
Jianyue Hu
Yaling Wan
Jing Luo
Weidong Wang
author_sort Haosheng Pang
title Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics Simulations
title_short Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics Simulations
title_full Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics Simulations
title_fullStr Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics Simulations
title_full_unstemmed Phase Transition of Single-Layer Molybdenum Disulfide Nanosheets under Mechanical Loading Based on Molecular Dynamics Simulations
title_sort phase transition of single-layer molybdenum disulfide nanosheets under mechanical loading based on molecular dynamics simulations
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2018-03-01
description The single-layer molybdenum disulfide (SLMoS2) nanosheets have been experimentally discovered to exist in two different polymorphs, which exhibit different electrical properties, metallic or semiconducting. Herein, molecular dynamics (MD) simulations of nanoindentation and uniaxial compression were conducted to investigate the phase transition of SLMoS2 nanosheets. Typical load–deflection curves, stress–strain curves, and local atomic structures were obtained. The loading force decreases sharply and then increases again at a critical deflection under the nanoindentation, which is inferred to the phase transition. In addition to the layer thickness, some related bond lengths and bond angles were also found to suddenly change as the phase transition occurs. A bell-like hollow, so-called residual deformation, was found to form, mainly due to the lattice distortion around the waist of the bell. The effect of indenter size on the residual hollow was also analyzed. Under the uniaxial compression along the armchair direction, a different phase transition, a uniformly quadrilateral structure, was observed when the strain is greater than 27.7%. The quadrilateral structure was found to be stable and exhibit metallic conductivity in view of the first-principle calculation.
topic MoS2
phase transition
molecular dynamics
nanoindentation
uniaxial compression
url http://www.mdpi.com/1996-1944/11/4/502
work_keys_str_mv AT haoshengpang phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT minglinli phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT chenghuigao phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT hailihuang phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT weirongzhuo phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT jianyuehu phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT yalingwan phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT jingluo phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
AT weidongwang phasetransitionofsinglelayermolybdenumdisulfidenanosheetsundermechanicalloadingbasedonmoleculardynamicssimulations
_version_ 1716754075489402880