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Effects of grain size, temperature and strain rate on the mechanical properties of polycrystalline graphene - A molecular dynamics study

机译:粒度,温度和应变速率对多晶石墨烯力学性能的影响-分子动力学研究

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摘要

We investigate the mechanical properties of polycrystalline graphene deforming under uniaxial tension by using molecular dynamics simulations, focusing on the effects of grain size, temperature and strain rate. It is found that polycrystalline graphene with smaller grain size shows a larger drop of Young's modulus and fracture strength. For the polycrystalline graphene with grain size of 7.5 nm, the Young's modulus and fracture strength is about 80% and 40% that of single-crystalline graphene, respectively. Our simulation results also reveal that the Young's modulus and fracture strength of polycrystalline graphene are more sensitive to the changes of temperature and strain rate than that of single-crystalline graphene. When temperature increases from 100 to 1200 K, the fracture strength of polycrystalline graphene reduces by around 45%. At room temperature (300 K), the fracture strength of polycrystalline graphene increases by 10% as the strain rate increases from 5 x 10(-5) to 5 x 10(-3) ps(-1). Furthermore, the strain rate has a stronger influence on the fracture strength of polycrystalline graphene at a higher temperature than at a lower temperature; while the temperature has a stronger influence at a lower strain rate than at a higher strain rate. Our study thus provides a comprehensive understanding of the mechanical properties of polycrystalline graphene. (C) 2014 Elsevier Ltd. All rights reserved.
机译:我们利用分子动力学模拟研究了单轴拉伸下多晶石墨烯变形的力学性能,重点研究了晶粒尺寸,温度和应变速率的影响。发现具有较小晶粒尺寸的多晶石墨烯显示出更大的杨氏模量和断裂强度下降。对于晶粒尺寸为7.5nm的多晶石墨烯,杨氏模量和断裂强度分别为单晶石墨烯的约80%和40%。我们的仿真结果还表明,与单晶石墨烯相比,多晶石墨烯的杨氏模量和断裂强度对温度和应变率的变化更敏感。当温度从100 K升高到1200 K时,多晶石墨烯的断裂强度降低约45%。在室温(300 K)下,随着应变速率从5 x 10(-5)ps(-1)增加到5 x 10(-3)ps(-1),多晶石墨烯的断裂强度增加10%。此外,在较高的温度下比在较低的温度下,应变速率对多晶石墨烯的断裂强度具有更大的影响。而温度在较低的应变速率下比在较高的应变速率下具有更大的影响。因此,我们的研究提供了对多晶石墨烯力学性能的全面理解。 (C)2014 Elsevier Ltd.保留所有权利。

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