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Ultralow thermal conductivity from transverse acoustic phonon suppression in distorted crystalline {\alpha}-MgAgSb

Materials Science 2020-02-19 v1 Applied Physics

Abstract

Low thermal conductivity is favorable for preserving the temperature gradient between the two ends of a thermoelectric material in order to ensure continuous electron current generation. In high-performance thermoelectric materials, there are two main low thermal conductivity mechanisms: the phonon anharmonic in PbTe and SnSe and phonon scattering resulting from the dynamic disorder in AgCrSe2 and CuCrSe2, which have been successfully revealed by inelastic neutron scattering. Using neutron scattering and ab initio calculations, we report here a mechanism of static local structure distortion combined with phonon-anharmonic-induced ultralow lattice thermal conductivity in {\alpha}-MgAgSb. Since the transverse acoustic phonons are almost fully scattered by the compound's intrinsic distorted rocksalt sublattice, the heat is mainly transported by the longitudinal acoustic phonons. The ultralow thermal conductivity in {\alpha}-MgAgSb is attributed to its atomic dynamics being altered by the structure distortion, which presents a possible microscopic route to enhance the performance of similar thermoelectric materials.

Keywords

Cite

@article{arxiv.2001.07070,
  title  = {Ultralow thermal conductivity from transverse acoustic phonon suppression in distorted crystalline {\alpha}-MgAgSb},
  author = {Xiyang Li and Peng-Fei Liu and Enyue Zhao and Zhigang Zhang and Tatiana Guidi and Manh Duc Le and Maxim Avdeev and Kazutaka Ikeda and Toshiya Otomo and Maiko Kofu and Kenji Nakajima and Jie Chen and Lunhua He and Yang Ren and Xun-Li Wang and Bao-Tian Wang and Zhifeng Ren and Huaizhou Zhao and Fangwei Wang},
  journal= {arXiv preprint arXiv:2001.07070},
  year   = {2020}
}

Comments

43 pages, 5 figures