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Monte Carlo Simulation of Silicon Nanowire Thermal Conductivity

机译:硅纳米线导热系数的蒙特卡罗模拟

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Monte Carlo simulation is applied to investigate phonon transport in single crystalline Si nanowires. Phonon-phonon normal (N) and Umklapp (U) scattering processes are modeled with a genetic algorithm to satisfy energy and momentum conservation. The scattering rates of N and U scattering processes are found from first-order perturbation theory. The thermal conductivity of Si nanowires is simulated and good agreement is achieved with recent experimental data. In order to study the confinement effects on phonon transport in nanowires, two different phonon dispersions, one from experimental measurements on bulk Si and the other solved from elastic wave theory, are adopted in the simulation. The discrepancy between simulations using different phonon dispersions increases as the nanowire diameter decreases, which suggests that the confinement effect is significant when the nanowire diameter approaches tens of nanometers. It is found that the U scattering probability in Si nanowires is higher than that in bulk Si due to the decrease of the frequency gap between different modes and the reduced phonon group velocity. Simulation results suggest that the dispersion relation for nanowires obtained from elasticity theory should be used to evaluate nanowire thermal conductivity as the nanowire diameter is reduced to the sub-100 nm scale.
机译:蒙特卡罗模拟用于研究单晶硅纳米线中声子的传输。利用遗传算法对声子-声子正常(N)和Umklapp(U)散射过程进行建模,以满足能量和动量守恒的要求。 N和U散射过程的散射速率是根据一阶微扰理论得出的。模拟了硅纳米线的热导率,并与最近的实验数据取得了很好的一致性。为了研究限制对纳米线中声子传输的影响,在模拟中采用了两种不同的声子色散,一种是对块状Si的实验测量,另一种是通过弹性波理论求解的。使用不同声子色散的模拟之间的差异随着纳米线直径的减小而增加,这表明当纳米线直径接近数十纳米时,限制作用非常明显。发现由于不同模式之间的频隙减小和声子群速度降低,Si纳米线中的U散射概率高于块状Si中的U散射概率。仿真结果表明,当纳米线的直径减小到100 nm以下时,应使用从弹性理论获得的纳米线的色散关系来评估纳米线的热导率。

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