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Thermal conductivity of carbon nanotubes with quantum correction via heat capacity

机译:通过热容量进行量子校正的碳纳米管的导热系数

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The molecular dynamics simulation with the use of the empirical Tersoff potential is applied to study the thermal characteristics of carbon nanotubes (CNTs). A thermal reservoir is devised to control the temperature and to exact the heat flux input. The quantum effect defining the precise temperature from the absolute zero Kelvin and up is included by applying phonon (boson) statistics to the specific heat. At low temperature, the CNT thermal conductivity increases with increasing temperature. After reaching its peak, which is limited by the length of the CNT, it decreases with temperature due to phonon-phonon interactions. The scaling law of thermal conductivity as a function of temperature and length is inferred from the simulation results, allowing prediction for CNTs of much longer length beyond what MD could simulate.
机译:利用经验的Tersoff势进行分子动力学模拟,以研究碳纳米管(CNT)的热特性。设计蓄热器以控制温度并精确输入热通量。通过将声子(玻色子)统计应用于比热,可以包括定义从绝对零开尔文到精确温度的量子效应。在低温下,CNT的导热系数随温度的升高而增加。在达到其峰值(受CNT长度限制)后,由于声子-声子相互作用,它随温度降低。从模拟结果可以推断出导热系数随温度和长度变化的定律,从而可以预测长度更长的碳纳米管,其长度超出了MD可以模拟的范围。

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