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首页> 外文期刊>Journal of Electronic Materials >Lattice Thermal Transport in Si-based Nanocomposites for Thermoelectric Applications
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Lattice Thermal Transport in Si-based Nanocomposites for Thermoelectric Applications

机译:用于热电应用的硅基纳米复合材料中的晶格热传输

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Silicon-germanium (SiGe) superlattices (SLs) have been studied for application as efficient thermoelectrics because of their low thermal conductivity, below that of bulk SiGe alloys. However, the cost of growing SLs is prohibitive, so Si-based nanocomposites, made by a ball-milling and sintering, have been proposed as a cost-effective replacement with similar properties. Because the lattice thermal conductivity of SiGe SLs is reduced by scattering from rough boundaries between layers, it is expected that grain boundary properties, for example roughness, orientation, and composition, will also substantially effect thermal transport in nanocomposites, resulting in many ways of adjusting their thermal conductivity by manipulation of grain size, shape, and crystal angle distributions. A model of phonon transport in nanocomposites was developed on the basis of the phonon Boltzmann transport equation. When nanocomposite structures were modeled by using a Voronoi tessellation to mimic the grains and their distribution, agreement with experimentally observed structures was excellent. To accurately treat phonon scattering from a series of atomically rough interfaces between the grains in the nanocomposite, we used a momentum-dependent specularity variable. Our results revealed thermal transport in Si-based nanocomposites is highly anisotropic and suggest further utilization of grain morphology to minimize thermal conductivity.
机译:已经研究了硅锗(SiGe)超晶格(SLs)作为有效的热电材料,因为它们的导热系数低,低于整体SiGe合金的导热系数。但是,生长SL的成本高得令人望而却步,因此,有人提出通过球磨和烧结制成的Si基纳米复合材料是具有类似特性的经济高效的替代材料。由于SiGe SLs的晶格热导率会通过从层之间的粗糙边界散射而降低,因此可以预期,晶界属性(例如粗糙度,取向和组成)也会显着影响纳米复合材料中的热传输,从而导致许多调整方法通过控制晶粒尺寸,形状和晶体角度分布来确定其导热系数。基于声子玻尔兹曼输运方程,建立了纳米复合材料中的声子输运模型。当使用Voronoi镶嵌来模拟纳米复合材料的结构及其晶粒分布时,与实验观察到的结构非常吻合。为了从纳米复合材料中晶粒之间的一系列原子粗糙界面准确地处理声子散射,我们使用了依赖于动量的镜面反射变量。我们的结果表明,硅基纳米复合材料中的热传递是高度各向异性的,并建议进一步利用晶粒形态将导热系数降至最低。

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