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INTERFACE EFFECT ON LATTICE THERMAL CONDUCTIVITIES OF SUPERLATTICE NANOWIRES

机译:界面对超晶格纳米晶格热导率的影响

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摘要

The nonequilibrium molecular dynamics (NEMD) method has been used to calculate the lattice thermal conductivities of Ar and Kr/Ar nanostructures in order to study the effects of interface scattering, boundary scattering, and elastic strain on lattice thermal conductivity. Results show that interface scattering poses significant resistance to phonon transport in superlattices and superlattice nanowires. The thermal conductivity of the Kr/Ar superlattice nanowire is only about 1/3 of that for pure Ar nanowires with the same cross sectional area and total length due to the additional interfacial thermal resistance. It is found that nanowire boundary scattering provides significant resistance to phonon transport. As the cross sectional area increases, the nanowire boundary scattering decreases, which leads to increased nanowire thermal conductivity. The ratio of the interfacial thermal resistance to the total effective thermal resistance increases from 30% for the superlattice nanowire to 42% for the superlattice film. Period length is another important factor affecting the effective thermal conductivity of the nanostructures. Increasing the period length will lead to increased acoustic mismatch between the adjacent layers, and hence increased interfacial thermal resistance. However, if the total length of the superlattice nanowire is fixed, reducing the period length will lead to decreased effective thermal conductivity due to the increased number of interfaces. Finally, it is found that the interfacial thermal resistance decreases as the reference temperature increases, which might be due to the inelastic interface scattering.
机译:为了研究界面散射,边界散射和弹性应变对晶格热导率的影响,非平衡分子动力学(NEMD)方法已用于计算Ar和Kr / Ar纳米结构的晶格热导率。结果表明,界面散射对超晶格和超晶格纳米线中的声子传输具有显着的抵抗作用。由于具有额外的界面热阻,Kr / Ar超晶格纳米线的热导率仅为具有相同横截面积和总长度的纯Ar纳米线的热导率的1/3。发现纳米线边界散射提供了对声子传输的显着抵抗。随着横截面积的增加,纳米线边界散射减小,这导致纳米线热导率增加。界面热阻与总有效热阻之比从超晶格纳米线的30%增加到超晶格膜的42%。周期长度是影响纳米结构的有效导热率的另一个重要因素。周期长度的增加将导致相邻层之间的声学​​失配增加,并因此增加界面热阻。然而,如果超晶格纳米线的总长度是固定的,则由于界面数量的增加,减小周期长度将导致有效导热率降低。最后,发现界面热阻随着参考温度的升高而降低,这可能是由于界面界面的非弹性散射所致。

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