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First‐Principle‐Based Phonon Transport Properties of Nanoscale Graphene Grain Boundaries

机译:纳米石墨烯晶粒边界的第一性原理声子输运性质

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摘要

The integrity of phonon transport properties of large graphene (linear and curved) grain boundaries (GBs) is investigated under the influence of structural and dynamical disorder. To do this, density functional tight‐binding (DFTB) method is combined with atomistic Green's function technique. The results show that curved GBs have lower thermal conductance than linear GBs. Its magnitude depends on the length of the curvature and out‐of‐plane structural distortions at the boundary, having stronger influence the latter one. Moreover, it is found that by increasing the defects at the boundary, the transport properties can strongly be reduced in comparison to the effect produced by heating up the boundary region. This is due to the large reduction of the phonon transmission for in‐plane and out‐of‐plane vibrational modes after increasing the structural disorder in the GBs.
机译:在结构和动力学无序的影响下,研究了大石墨烯(线性和弯曲)晶界(GBs)的声子输运性质的完整性。为此,将密度泛函紧密绑定(DFTB)方法与原子格林函数函数相结合。结果表明,弯曲的GBs的导热系数低于线性GBs。它的大小取决于曲率的长度和边界处的平面外结构变形,对后者的影响更大。此外,发现通过增加边界处的缺陷,与通过加热边界区域产生的效果相比,可以极大地降低传输特性。这是由于在增加GBs的结构紊乱之后,平面内和平面外振动模式的声子传输大大降低了。

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