Effect of point defects and nanopores on the fracture behaviors in single-layer MoS2 nanosheets

Hongwei Bao, Y. Miao, F. Ma
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Abstract

Point defects and nanopores are inevitable and particularly noticeable in single-layer (SL) MoS2. Molecular dynamics (MD) simulations have been done to comprehensively study the influences of point defects and nanopores on tensile deformation behaviors of SLMoS2 nanosheets, and the dependences of fracture properties on defect type and concentration, pore size, temperature and strain rate are discussed. The formation energy of S vacancy (VS) is the lowest one, but that of VMoS6 is the highest one, corresponding to the highest and lowest fracture stress, respectively. The local stress concentration around point defects and nanopores might lead to the early bond breaking and subsequent nucleation of cracks and brittle fracture upon tensile loading. A modified Griffith criterion is proposed to describe the defect concentration and pore size dependent fracture stress and strain. These findings provide us an important guideline for the structural design of 2D materials in future applications.
点缺陷和纳米孔对单层二硫化钼纳米片断裂行为的影响
在单层二硫化钼中,点缺陷和纳米孔是不可避免的,尤其明显。通过分子动力学(MD)模拟,全面研究了点缺陷和纳米孔对SLMoS2纳米片拉伸变形行为的影响,讨论了缺陷类型和浓度、孔径、温度和应变速率对断裂性能的影响。S空位(VS)的形成能最低,而VMoS6的形成能最高,分别对应最高和最低的断裂应力。在拉伸载荷作用下,点缺陷和纳米孔周围的局部应力集中可能导致早期粘结断裂和随后的裂纹形核和脆性断裂。提出了一种改进的Griffith准则来描述缺陷浓度和孔径与断裂应力和应变的关系。这些发现为今后二维材料的结构设计提供了重要的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
6.40
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