非谐性
凝聚态物理
声子
热导率
热电材料
材料科学
热电效应
声子散射
非弹性中子散射
散射
不稳定性
铁电性
中子散射
物理
光学
光电子学
热力学
量子力学
电介质
复合材料
作者
Olivier Delaire,Jie Ma,Karol Marty,Andrew F. May,Michael A. McGuire,Mao‐Hua Du,David J. Singh,A. Podlesnyak,G. Ehlers,M. D. Lumsden,B. C. Sales
出处
期刊:Nature Materials
[Springer Nature]
日期:2011-06-05
卷期号:10 (8): 614-619
被引量:636
摘要
Understanding the microscopic processes affecting the bulk thermal conductivity is crucial to develop more efficient thermoelectric materials. PbTe is currently one of the leading thermoelectric materials, largely thanks to its low thermal conductivity. However, the origin of this low thermal conductivity in a simple rocksalt structure has so far been elusive. Using a combination of inelastic neutron scattering measurements and first-principles computations of the phonons, we identify a strong anharmonic coupling between the ferroelectric transverse optic mode and the longitudinal acoustic modes in PbTe. This interaction extends over a large portion of reciprocal space, and directly affects the heat-carrying longitudinal acoustic phonons. The longitudinal acoustic–transverse optic anharmonic coupling is likely to play a central role in explaining the low thermal conductivity of PbTe. The present results provide a microscopic picture of why many good thermoelectric materials are found near a lattice instability of the ferroelectric type. Neutron scattering and first-principles calculations show that the small thermal conductivity of PbTe is due to anharmonic coupling between the acoustic phonon modes and the optical ferroelectric ones. The results provide a microscopic picture of why many good thermoelectrics are found near a ferroelectric lattice instability.
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