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可变应变、温度和缺陷条件下HOP-石墨烯力学性能的原子研究

Atomistic Study on the Mechanical Properties of HOP-Graphene Under Variable Strain, Temperature, and Defect Conditions.

作者信息

Peng Qing, Li Jiale, Cai Xintian, Chen Gen, Huang Zeyu, Zheng Lihang, Li Hongyang, Chen Xiao-Jia, Hu Zhongwei

机构信息

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

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

出版信息

Nanomaterials (Basel). 2024 Dec 27;15(1):31. doi: 10.3390/nano15010031.

Abstract

HOP-graphene is a graphene structural derivative consisting of 5-, 6-, and 8-membered carbon rings with distinctive electrical properties. This paper presents a systematic investigation of the effects of varying sizes, strain rates, temperatures, and defects on the mechanical properties of HOP-graphene, utilizing molecular dynamics simulations. The results revealed that Young's modulus of HOP-graphene in the armchair direction is 21.5% higher than that in the zigzag direction, indicating that it exhibits greater rigidity in the former direction. The reliability of the tensile simulations was contingent upon the size and strain rate. An increase in temperature from 100 K to 900 K resulted in a decrease in Young's modulus by 7.8% and 2.9% for stretching along the armchair and zigzag directions, respectively. An increase in the concentration of introduced void defects from 0% to 3% resulted in a decrease in Young's modulus by 24.7% and 23.1% for stretching along the armchair and zigzag directions, respectively. An increase in the length of rectangular crack defects from 0 nm to 4 nm resulted in a decrease in Young's modulus for stretching along the armchair and zigzag directions by 6.7% and 5.7%, respectively. Similarly, an increase in the diameter of the circular hole defect from 0 nm to 4 nm resulted in a decrease in Young's modulus along both the armchair and zigzag directions, with a corresponding reduction of 11.0% and 10.4%, respectively. At the late stage of tensile fracture along the zigzag direction, HOP-graphene undergoes a transformation to an amorphous state under tensile stress. Our results might contribute to a more comprehensive understanding of the mechanical properties of HOP-graphene under different test conditions, helping to land it in potential practical applications.

摘要

HOP石墨烯是一种由5元、6元和8元碳环组成的具有独特电学性质的石墨烯结构衍生物。本文利用分子动力学模拟,系统研究了尺寸、应变率、温度和缺陷对HOP石墨烯力学性能的影响。结果表明,HOP石墨烯在扶手椅方向的杨氏模量比之字形方向高21.5%,表明其在前者方向表现出更大的刚性。拉伸模拟的可靠性取决于尺寸和应变率。温度从100 K升高到900 K,沿扶手椅方向和之字形方向拉伸时,杨氏模量分别降低7.8%和2.9%。引入的空位缺陷浓度从0%增加到3%,沿扶手椅方向和之字形方向拉伸时,杨氏模量分别降低24.7%和23.1%。矩形裂纹缺陷长度从0 nm增加到4 nm,沿扶手椅方向和之字形方向拉伸时,杨氏模量分别降低6.7%和5.7%。同样,圆孔缺陷直径从0 nm增加到4 nm,沿扶手椅方向和之字形方向的杨氏模量均降低,分别相应降低11.0%和10.4%。在沿之字形方向拉伸断裂后期,HOP石墨烯在拉伸应力下转变为非晶态。我们的结果可能有助于更全面地理解不同测试条件下HOP石墨烯的力学性能,有助于其在潜在实际应用中的落地。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec60/11723169/ba38743705f7/nanomaterials-15-00031-g001.jpg

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