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热电材料PbSe中的本征非谐局域化

Intrinsic anharmonic localization in thermoelectric PbSe.

作者信息

Manley M E, Hellman O, Shulumba N, May A F, Stonaha P J, Lynn J W, Garlea V O, Alatas A, Hermann R P, Budai J D, Wang H, Sales B C, Minnich A J

机构信息

Material Science and Technology Division, Oak Ridge National Lab, Oak Ridge, TN, 37831, USA.

Division of Engineering and Applied Science, California Institute of Technology, Pasadena, CA, 91125, USA.

出版信息

Nat Commun. 2019 Apr 26;10(1):1928. doi: 10.1038/s41467-019-09921-4.

Abstract

Lead chalcogenides have exceptional thermoelectric properties and intriguing anharmonic lattice dynamics underlying their low thermal conductivities. An ideal material for thermoelectric efficiency is the phonon glass-electron crystal, which drives research on strategies to scatter or localize phonons while minimally disrupting electronic-transport. Anharmonicity can potentially do both, even in perfect crystals, and simulations suggest that PbSe is anharmonic enough to support intrinsic localized modes that halt transport. Here, we experimentally observe high-temperature localization in PbSe using neutron scattering but find that localization is not limited to isolated modes - zero group velocity develops for a significant section of the transverse optic phonon on heating above a transition in the anharmonic dynamics. Arrest of the optic phonon propagation coincides with unusual sharpening of the longitudinal acoustic mode due to a loss of phase space for scattering. Our study shows how nonlinear physics beyond conventional anharmonic perturbations can fundamentally alter vibrational transport properties.

摘要

硫属铅化物具有优异的热电性能,其低导热率背后有着引人入胜的非谐晶格动力学。对于热电效率而言,理想的材料是声子玻璃-电子晶体,这推动了关于在最小程度干扰电子传输的同时散射或局域化声子的策略的研究。即使在完美晶体中,非谐性也有可能同时做到这两点,并且模拟表明PbSe的非谐性足以支持阻止传输的本征局域模。在这里,我们利用中子散射实验观测到了PbSe中的高温局域化现象,但发现这种局域化并不局限于孤立模式——在高于非谐动力学转变温度加热时,横向光学声子的很大一部分会出现零群速度。由于散射的相空间损失,光学声子传播的停滞与纵向声学模的异常锐化同时出现。我们的研究表明,超越传统非谐微扰的非线性物理如何能从根本上改变振动传输特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ee41/6486597/6f76e269a9a9/41467_2019_9921_Fig1_HTML.jpg

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