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Impact of noble-gas filler atoms on the lattice thermal conductivity of CoSb3 skutterudites: first-principles modelling

机译:贵瓦气填料原子对COSB3 Skutterudites的晶格导热系数的影响:第一原理建模

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We present a systematic first-principles modelling study of the structural dynamics and thermal transport in CoSb3 skutterudites with a series of noble-gas filler atoms. Filling with chemically-inert atoms provides an idealised model for isolating the effects of the fillers from the impact of redox changes to the host electronic structure. A range of analysis techniques are proposed to estimate the filler rattling frequencies, to quantify the separate impacts of the fillers on the phonon group velocities and lifetimes, and to show how changes to the phonon spectra and interaction strengths lead to suppressed lifetimes. The noble-gas fillers are found to reduce the thermal conductivity of the CoSb3 framework by up to 15% primarily by suppressing the group velocities of low-lying optic modes. The filler rattling frequencies are determined by a detailed balance of increasing atomic mass and stronger interactions with the framework, and are found to be a good predictor of the impact on the heat transport. Lowering the rattling frequency below similar to 1.5 THz by selecting heavy fillers that interact weakly with the framework is predicted to lead to a much larger suppression of the thermal transport, by inducing avoided crossings in the acoustic-mode dispersion and facilitating enhanced scattering and a consequent large reduction in phonon lifetimes. Approximate rattling frequencies determined from the harmonic force constants may therefore provide a useful metric for selecting filler atoms to optimise the thermal transport in skutterudites and other cage compounds such as clathrates.
机译:我们对含有一系列惰性气体填充原子的CoSb3 Skutterudite的结构动力学和热输运进行了系统的第一性原理建模研究。用化学惰性原子填充提供了一个理想化的模型,用于将填料的影响与主体电子结构的氧化还原变化的影响隔离开来。提出了一系列分析技术来估计填充物的咔哒声频率,量化填充物对声子群速度和寿命的单独影响,并展示声子谱和相互作用强度的变化如何导致抑制寿命。惰性气体填充物主要通过抑制低洼光模的群速度,使CoSb3框架的热导率降低15%。填料卡嗒卡嗒的频率由原子质量增加和与框架的更强相互作用的详细平衡决定,并且被发现是对热传输影响的良好预测。通过选择与框架弱相互作用的重填料,将卡嗒卡嗒的频率降低到类似于1.5太赫兹以下,预计将导致对热传输的更大抑制,方法是在声学模式色散中避免交叉,促进增强散射,从而大幅缩短声子寿命。因此,根据谐波力常数确定的近似卡嗒声频率可为选择填充原子以优化Skutterudite和其他笼型化合物(如笼型化合物)中的热传输提供有用的指标。

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