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立方Cu₁₂Sb₄S₁₃黝铜矿中类玻璃晶格热输运的微观机制

Microscopic Mechanisms of Glasslike Lattice Thermal Transport in Cubic Cu_{12}Sb_{4}S_{13} Tetrahedrites.

作者信息

Xia Yi, Ozoliņš Vidvuds, Wolverton Chris

机构信息

Department of Materials Science and Engineering, Northwestern University, Evanston, Illinois 60208, USA.

Department of Applied Physics, Yale University, New Haven, Connecticut 06511, USA.

出版信息

Phys Rev Lett. 2020 Aug 21;125(8):085901. doi: 10.1103/PhysRevLett.125.085901.

DOI:10.1103/PhysRevLett.125.085901
PMID:32909770
Abstract

Materials based on cubic tetrahedrites (Cu_{12}Sb_{4}S_{13}) are useful thermoelectrics with unusual thermal and electrical transport properties, such as very low and nearly temperature-independent lattice thermal conductivity (κ_{L}). We explain the microscopic origin of the glasslike κ_{L} in Cu_{12}Sb_{4}S_{13} by explicitly treating anharmonicity up to quartic terms for both phonon energies and phonon scattering rates. We show that the strongly unstable phonon modes associated with trigonally coordinated Cu atoms are anharmonically stabilized above approximately 100 K and continue hardening with increasing temperature in accord with experimental data. This temperature-induced hardening effect reduces scattering of heat carrying acoustic modes by reducing the available phase space for three-phonon processes, thereby balancing the conventional ∝T increase in scattering due to phonon population and yielding nearly temperature-independent κ_{L}. Furthermore, we find that very strong phonon broadening leads to a qualitative breakdown of the conventional phonon-gas model and modify the dominant heat transport mechanism from the particlelike phonon wave packet propagation to incoherent contributions described by the off-diagonal terms in the heat-flux operator, which are typically prevailing in glasses and disordered crystals. Our work paves the way to a deeper understanding of glasslike thermal conductivity in complex crystals with strong anharmonicity.

摘要

基于立方硫锑铜矿(Cu₁₂Sb₄S₁₃)的材料是有用的热电材料,具有非同寻常的热传输和电传输特性,比如极低且几乎与温度无关的晶格热导率(κₗ)。我们通过明确处理声子能量和声子散射率的四次项非简谐性,来解释Cu₁₂Sb₄S₁₃中类玻璃态κₗ的微观起源。我们表明,与三角配位的铜原子相关的强不稳定声子模式在大约100 K以上通过非简谐作用而稳定下来,并随着温度升高持续变硬,这与实验数据一致。这种温度诱导的硬化效应通过减少三声子过程的可用相空间,降低了携带热量的声子模式的散射,从而平衡了由于声子数导致的常规散射∝T增加,并产生了几乎与温度无关的κₗ。此外,我们发现非常强的声子展宽导致了传统声子气模型的定性失效,并将主导的热传输机制从类粒子声子波包传播转变为由热流算符中非对角项描述的非相干贡献,这在玻璃和无序晶体中通常占主导。我们的工作为深入理解具有强非简谐性的复杂晶体中的类玻璃态热导率铺平了道路。

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Microscopic Mechanisms of Glasslike Lattice Thermal Transport in Cubic Cu_{12}Sb_{4}S_{13} Tetrahedrites.立方Cu₁₂Sb₄S₁₃黝铜矿中类玻璃晶格热输运的微观机制
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