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Anisotropic thermal conductivity and mechanical properties of phagraphene: a molecular dynamics study

机译:Pharaphens的各向异性导热性和力学性能:分子动力学研究

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摘要

Phagraphene is a novel 2D carbon allotrope with interesting electronic properties which has been recently theoretically proposed. Phagraphene is similar to a defective graphene structure with an arrangement of pentagonal, heptagonal and hexagonal rings. In this study we investigate the thermal conductivity and mechanical properties of phagraphene using molecular dynamics simulations. Using the non-equilibrium molecular dynamics method, we found the thermal conductivity of phagraphene to be anisotropic, with room temperature values of 218 +/- 20 W m(-1) K-1 along the armchair direction and 285 +/- 29 W m(-1) K-1 along the zigzag direction. Both values are one order of magnitude smaller than for pristine graphene. The analysis of the phonon group velocities also shows a significant reduction in this quantity for phagraphene in comparison to graphene. By performing uniaxial tensile simulations, we studied the deformation process and mechanical response of phagraphene. We found that phagraphene exhibits a remarkable high tensile strength around 85 +/- 2 GPa, whereas its elastic modulus is also anisotropic along the in-plane directions, with values of 870 +/- 15 GPa and 800 +/- 14 GPa for the armchair and zigzag directions, respectively. The lower thermal conductivity of phagraphene along with its predicted electronic properties suggests that it could be a better candidate than graphene in future carbon-based thermoelectric devices.
机译:Phagraphene是一种新颖的2D碳同素异形体与已经最近提出理论上有趣的电子特性。 Phagraphene类似于有缺陷的石墨烯结构与五边形,七边形和六边形环的布置。在这项研究中,我们调查的导热性和利用分子动力学模拟phagraphene的机械性能。使用非平衡分子动力学方法,我们发现phagraphene的热导率是各向异性的,具有218 +/- 20瓦米(-1)K-1沿着方向扶手椅和285 +/- 29 w ^室温值米(-1)K-1沿着Z字形方向。这两个值的大小比原始石墨烯小一个数量级。声子群速度的分析还表明相比于石墨烯在这个量,phagraphene一个显著减少。通过进行单轴拉伸模拟,我们研究了变形过程和phagraphene的机械响应。我们发现,表现出phagraphene约85 +/-为2GPa的显着高的拉伸强度,而其弹性模量也沿着面内方向的各向异性,与用于870 +/- 15 GPA和800 +/- 14吉帕值扶手椅和分别曲折方向。 phagraphene与其预测电子性质沿下的热导率表明,它可能比基于碳未来热电装置石墨更好的候选者。

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  • 来源
    《RSC Advances》 |2016年第63期|共7页
  • 作者单位

    Univ Fed Rio Grande do Norte Dept Fis Teor &

    Expt BR-59078970 Natal RN Brazil;

    Bauhaus Univ Weimar Inst Struct Mech Marienstr 15 D-99423 Weimar Germany;

    Carnegie Mellon Univ Chem Engn Dept Pittsburgh PA 15213 USA;

    Tongji Univ Coll Civil Engn 1239 Siping Rd Shanghai 20092 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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