Yi Changli, Hu Chengzhi, Bai Minli, Lv Jizu, Tang Dawei
Laboratory of Ocean Energy Utilization of Ministry of Education, School of Energy and Power Engineering, Dalian University of Technology, Dalian, 116024, People's Republic of China.
Nanotechnology. 2020 May 22;31(21):215703. doi: 10.1088/1361-6528/ab73b3. Epub 2020 Feb 7.
Experiments and simulations have shown that molybdenum disulfide (MoS) has unique mechanical and electrical properties that make it promising for application as a flexible material in microscopic and nanoscopic electronic devices. In this paper, the molecular dynamics method is used to study the mechanical properties of multilayer MoS during compression and stretching under different intra-layer and inter-layer potentials to choose the most suitable ones. The results show that the increase in the inter-layer repulsive force during compression was all provided by sulfur atoms in the adjacent layer. The two intra-layer potentials represented two forms of tensile fracture: plastic fracture with structural holes or lattice distortions, and brittle fracture with instantaneous destruction. The chosen inter-layer potential had a significant influence on the structure of the multilayer MoS but the effect of inter-layer potential during stretching was not prominent. By comparing these results with reference values, the most suitable intra-layer and inter-layer potentials for the multilayer MoS were selected, and can serve as a reliable reference for subsequent simulations.
实验和模拟表明,二硫化钼(MoS)具有独特的机械和电学性能,这使其有望作为一种柔性材料应用于微观和纳米级电子器件。本文采用分子动力学方法,研究了在不同层内和层间势作用下多层MoS在压缩和拉伸过程中的力学性能,以选择最合适的势。结果表明,压缩过程中层间排斥力的增加均由相邻层中的硫原子提供。两种层内势代表了两种拉伸断裂形式:具有结构孔洞或晶格畸变的塑性断裂,以及瞬间破坏的脆性断裂。所选的层间势对多层MoS的结构有显著影响,但拉伸过程中层间势的影响并不突出。通过将这些结果与参考值进行比较,选择了多层MoS最合适的层内和层间势,可为后续模拟提供可靠参考。