Effect of Strain Rate, Temperature, Vacancy, and Microcracks on Mechanical Properties of 8-16-4 Graphyne

Author:

Peng Qing123ORCID,Huang Zeyu245,Chen Gen245,Zhang Yuqiang45,Zhang Xiaofan26,Chen Xiao-Jia1,Hu Zhongwei45

Affiliation:

1. School of Science, Harbin Institute of Technology, Shenzhen 518055, China

2. State Key Laboratory of Nonlinear Mechanics, Institute of Mechanics, Chinese Academy of Sciences, Beijing 100190, China

3. Guangdong Aerospace Research Academy, Guangzhou 511458, China

4. Institute of Manufacturing Engineering, Huaqiao University, Xiamen 361021, China

5. Institute of Mechanical Engineering and Automation, Huaqiao University, Xiamen 361021, China

6. College of Aerospace Engineering, Chongqing University, Chongqing 400044, China

Abstract

The 8-16-4 graphyne, a recently identified two-dimensional carbon allotrope, exhibits distinctive mechanical and electrical properties, making it a candidate material for flexible electronic applications. This study endeavors to enhance our comprehension of the fracture behavior and mechanical properties of 8-16-4 graphyne. The mechanical properties of 8-16-4 graphyne were evaluated through molecular dynamics simulations, examining the impact of boundary conditions, temperature, and strain rate, as well as the coupled interactions between temperature, vacancy defects, and microcracks. The findings reveal that 8-16-4 graphyne undergoes fracture via the cleavage of ethylene bonds at a critical strain value of approximately 0.29. Variations in boundary conditions and strain rate influence the fidelity of tensile simulation outcomes. Temperature, vacancy concentration, and the presence of microcracks markedly affect the mechanical properties of 8-16-4 graphyne. In contrast to other carbon allotropes, 8-16-4 graphyne exhibits a diminished sensitivity to vacancy defects in its mechanical performance. However, carbon vacancies at particular sites are more prone to initiating cracks. Furthermore, pre-existing microcracks within the material can potentially alter the fracture mode.

Funder

Shenzhen Science and Technology Program

National Natural Science Foundation of China

High-level Innovation Research Institute Program of Guangdong Province

LiYing Program of the Institute of Mechanics, Chinese Academy of Sciences

Publisher

MDPI AG

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