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Effect of triangular vacancy defect on thermal conductivity and thermal rectification in graphene nanoribbons

机译:三角形空位缺陷对石墨烯纳米带导热系数和热精馏的影响

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摘要

We investigate the thermal transport properties of armchair graphene nanoribbons (AGNRs) possessing various sizes of triangular vacancy defect within a temperature range of 200-600 K by using classical molecular dynamics simulation. The results show that the thermal conductivities of the graphene nanoribbons decrease with increasing sizes of triangular vacancy defects in both directions across the whole temperature range tested, and the presence of the defect can decrease the thermal conductivity by more than 40% as the number of removed cluster atoms is increased to 25 (1.56% for vacancy concentration) owing to the effect of phonon-defect scattering. In the meantime, we find the thermal conductivity of defective graphene nanoribbons is insensitive to the temperature change at higher vacancy concentrations. Furthermore, the dependence of temperatures and various sizes of triangular vacancy defect for the thermal rectification ration are also detected. This work implies a possible route to achieve thermal rectifier for 2D materials by defect engineering.
机译:我们通过使用经典的分子动力学模拟,研究了在200-600 K的温度范围内具有各种尺寸的三角形空位缺陷的扶手椅石墨烯纳米带(AGNR)的热传输特性。结果表明,在整个测试温度范围内,石墨烯纳米带的导热系数随三角形空位缺陷尺寸的增加而减小,并且该缺陷的存在可使导热率降低40%以上。由于声子缺陷散射的作用,簇原子增加到25个(空位浓度为1.56%)。同时,我们发现有缺陷的石墨烯纳米带的导热系数对空位浓度较高时的温度变化不敏感。此外,还检测到温度和三角形空位缺陷的各种尺寸与热整流率的关系。这项工作暗示了通过缺陷工程来实现2D材料热整流器的可能途径。

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