Xiao Shuoyang, Hao Jiannan, Shi Tan, Jin Jianfeng, Wu Bin, Peng Qing
School of Physics and Astronomy, Beijing Normal University, Beijing 100875, People's Republic of China.
State Key Laboratory of Nonlinear Mechanics, Institute of Mechanics, Chinese Academy of Sciences, Beijing 100190, People's Republic of China.
Nanotechnology. 2024 Sep 10;35(48). doi: 10.1088/1361-6528/ad7509.
The distinctive multi-ring structure and remarkable electrical characteristics of biphenylene render it a material of considerable interest, notably for its prospective utilization as an anode material in lithium-ion batteries. However, understanding the mechanical traits of biphenylene is essential for its application, particularly due to the volumetric fluctuations resulting from lithium ion insertion and extraction during charging and discharging cycles. In this regard, this study investigates the performance of pristine biphenylene and materials embedded with various types of hole defects under uniaxial tension utilizing molecular dynamics simulations. Specifically, from the stress‒strain curves, we obtained key mechanical properties, including toughness, strength, Young's modulus and fracture strain. It was observed that various near-circular hole (including circular, square, hexagonal, and octagonal) defects result in remarkably similar properties. A more quantitative scaling analysis revealed that, in comparison with the exact shape of the defect, the area of the defect is more critical for determining the mechanical properties of biphenylene. Our finding might be beneficial to the defect engineering of two-dimensional materials.
联苯独特的多环结构和卓越的电学特性使其成为一种备受关注的材料,特别是因其有望用作锂离子电池的阳极材料。然而,了解联苯的机械特性对其应用至关重要,尤其是由于在充电和放电循环过程中锂离子嵌入和脱嵌会导致体积波动。在这方面,本研究利用分子动力学模拟研究了原始联苯以及嵌入各种类型孔洞缺陷的材料在单轴拉伸下的性能。具体而言,从应力-应变曲线中,我们获得了关键的力学性能,包括韧性、强度、杨氏模量和断裂应变。观察到各种近圆形孔洞(包括圆形、方形、六边形和八边形)缺陷导致的性能显著相似。更定量的标度分析表明,与缺陷的精确形状相比,缺陷面积对于确定联苯的力学性能更为关键。我们的发现可能有助于二维材料的缺陷工程。