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Electronic Instability and Anharmonicity in SnSe

Publication ,  Journal Article
Hong, J; Delaire, O
Published in: Materials Today Physics
2016

The binary compound SnSe exhibits record high thermoelectric performance, largely because of its very low thermal conductivity. The origin of the strong phonon anharmonicity leading to the low thermal conductivity of SnSe is investigated through first-principles calculations of the electronic structure and phonons. It is shown that a Jahn-Teller instability of the electronic structure is responsible for the high-temperature lattice distortion between the Cmcm and Pnma phases. The coupling of phonon modes and the phase transition mechanism are elucidated, emphasizing the connection with hybrid improper ferroelectrics. This coupled instability of electronic orbitals and lattice dynamics is the origin of the strong anharmonicity causing the ultralow thermal conductivity in SnSe. Exploiting such bonding instabilities to generate strong anharmonicity may provide a new rational to design efficient thermoelectric materials.

Duke Scholars

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Published In

Materials Today Physics

DOI

Publication Date

2016

Volume

10

Start / End Page

100093 / 100093

Related Subject Headings

  • 5104 Condensed matter physics
  • 5102 Atomic, molecular and optical physics
  • 4016 Materials engineering
 

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Hong, J., & Delaire, O. (2016). Electronic Instability and Anharmonicity in SnSe. Materials Today Physics, 10, 100093–100093. https://doi.org/10.1016/j.mtphys.2019.100093
Hong, Jiawang, and Olivier Delaire. “Electronic Instability and Anharmonicity in SnSe.” Materials Today Physics 10 (2016): 100093–100093. https://doi.org/10.1016/j.mtphys.2019.100093.
Hong J, Delaire O. Electronic Instability and Anharmonicity in SnSe. Materials Today Physics. 2016;10:100093–100093.
Hong, Jiawang, and Olivier Delaire. “Electronic Instability and Anharmonicity in SnSe.” Materials Today Physics, vol. 10, 2016, pp. 100093–100093. Manual, doi:10.1016/j.mtphys.2019.100093.
Hong J, Delaire O. Electronic Instability and Anharmonicity in SnSe. Materials Today Physics. 2016;10:100093–100093.

Published In

Materials Today Physics

DOI

Publication Date

2016

Volume

10

Start / End Page

100093 / 100093

Related Subject Headings

  • 5104 Condensed matter physics
  • 5102 Atomic, molecular and optical physics
  • 4016 Materials engineering