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纳米压痕下单层TiCT的断裂机制与裂纹扩展:表面终止和空位缺陷的影响

Fracture Mechanisms and Crack Propagation in Monolayer TiCT under Nanoindentation: The Influence of Surface Terminations and Vacancy Defects.

作者信息

Jiang Shenda, Yang Lin, Ma Xiaoliang, Zhang Hongchi, Guo Shuai, Ren Hongzhao, Yin Weilong, He Xiaodong

机构信息

National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin 150080, China.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 11;16(36):48113-48125. doi: 10.1021/acsami.4c10022. Epub 2024 Aug 31.

Abstract

Monolayer MXenes are a novel class of two-dimensional transition metal carbides/nitrides with fascinating physicochemical properties. Despite recent advances in the study of MXenes' mechanical properties, a comprehensive understanding of the fundamental physical mechanisms that affect fracture due to surface terminations and vacancy defects in MXenes under nanoindentation remains largely unexplored. Here, we address this gap using molecular dynamics simulations and nanoindentation theory to investigate the effects of surface terminations and vacancy defects on the fracture behavior of TiCT MXenes. By inducing the rupture of monolayer MXenes through nanoindentation, we find that bare TiC exhibits brittle fracture behavior. The presence of surface terminations and vacancy defects reduces the load-carrying capacity and flexibility of MXenes. Interestingly, surface terminations increase the stiffness of the structure, while vacancy defects have the opposite effect. We also find that high concentrations of surface oxidation impart ductile fracture characteristics to MXenes and increase the maximum crack length at failure. Additionally, defects exceeding the critical concentration can effectively prevent brittle crack propagation by causing frequent crack deflection and blunting crack tips. Combining these findings, we propose a new strategy to synergistically enhance the fracture toughness of MXenes through high concentrations of surface oxidation and vacancy defects exceeding the critical concentration without significantly affecting strength and stiffness, thereby avoiding catastrophic failure in MXene monolayers due to brittle fracture. This work provides fundamental insights into the mechanical properties and fracture mechanisms of monolayer MXenes.

摘要

单层MXenes是一类新型的二维过渡金属碳化物/氮化物,具有迷人的物理化学性质。尽管最近在MXenes力学性能研究方面取得了进展,但在纳米压痕下,对于影响MXenes表面终止和空位缺陷导致断裂的基本物理机制的全面理解仍在很大程度上未被探索。在这里,我们通过分子动力学模拟和纳米压痕理论来填补这一空白,以研究表面终止和空位缺陷对TiCT MXenes断裂行为的影响。通过纳米压痕诱导单层MXenes的破裂,我们发现裸露的TiC表现出脆性断裂行为。表面终止和空位缺陷的存在降低了MXenes的承载能力和柔韧性。有趣的是,表面终止增加了结构的刚度,而空位缺陷则有相反的效果。我们还发现,高浓度的表面氧化赋予MXenes韧性断裂特征,并增加了失效时的最大裂纹长度。此外,超过临界浓度的缺陷可以通过引起频繁的裂纹偏转和钝化裂纹尖端来有效地防止脆性裂纹扩展。结合这些发现,我们提出了一种新策略,通过高浓度的表面氧化和超过临界浓度的空位缺陷来协同增强MXenes的断裂韧性,而不会显著影响强度和刚度,从而避免MXene单层由于脆性断裂而发生灾难性失效。这项工作为单层MXenes的力学性能和断裂机制提供了基本见解。

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