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Transport properties through graphene grain boundaries: strain effects versus lattice symmetry

机译:通过石墨烯粮食运输属性边界:应变效应和晶格对称

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摘要

As most materials available at the macroscopic scale, graphene samples usually appear in a polycrystalline form and thus contain grain boundaries. In the present work, the effect of uniaxial strain on the electronic transport properties through graphene grain boundaries is investigated using atomistic simulations. A systematic picture of transport properties with respect to the strain and lattice symmetry of graphene domains on both sides of the boundary is provided. In particular, it is shown that strain engineering can be used to open a finite transport gap in all graphene systems where the two domains are arranged in different orientations. This gap value is found to depend on the strain magnitude, on the strain direction and on the lattice symmetry of graphene domains. By choosing appropriately the strain direction, a large transport gap of a few hundred meV can be achieved when applying a small strain of only a few percents. For a specific class of graphene grain boundary systems, strain engineering can also be used to reduce the scattering on defects and thus to significantly enhance the conductance. With a large strain-induced gap, these graphene heterostructures are proposed to be promising candidates for highly sensitive strain sensors, flexible electronic devices and p-n junctions with non-linear I-V characteristics.
机译:因为大多数宏观材料可用规模,通常出现在石墨烯样品多晶形式,因此包含谷物边界。单轴应变的电子传输通过石墨烯颗粒边界属性使用原子论的模拟研究。系统的传输特性对应变和晶格的对称性石墨烯域两边的边界提供。工程可以用来打开一个有限的在所有的石墨烯系统运输差距两个域被安排在不同取向。压力大小、应变的方向和石墨烯晶格对称性的域。通过选择适当的应变方向,大型运输缺口几百兆电子伏实现应用的微小应变时只有一个几个数字。晶界系统、应变工程还被用来减少缺陷的散射从而大大提高电导。这些石墨烯异质结构建议是有前途的候选人为高度敏感应变传感器、电子设备和灵活与非线性电流-电压pn结特征。

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