4.6 Article

Optical phonon dominated heat transport: A first-principles thermal conductivity study of BaSnS2

Journal

PHYSICAL REVIEW B
Volume 104, Issue 24, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.104.245209

Keywords

-

Funding

  1. U.S. Department of Energy, Office of Science [DE-SC0014520]
  2. U.S. Department of Energy, Office of Basic Energy Sciences [DE-SC0014520]
  3. National Key Research and Development Program of China [2019YFA0704902]
  4. Natural Science Foundation of China [51972256, 51872219, 51632006, 51521001]
  5. 111 Project of China [B07040]
  6. China Scholarship Council [201906950054]

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In BaSnS2, optical phonons dominate the lattice thermal conductivity due to their high group velocities and unique arrangement in SnS3 tetrahedra. This study reveals that over 68% of the lattice thermal conductivity in BaSnS2 is contributed by optical phonons, highlighting the potential for further experimental investigations as an intrinsic low-KL material.
Acoustic phonons with long mean free paths have long been believed to control the lattice thermal conductivity KL in solids dominantly. In this study, however, we demonstrate an optical phonon dominated K-L in BaSnS2. By solving the Peierls-Boltzmann transport equation, we predict a low diagonal lattice thermal conductivity K-L(D) of 0.34 W m(-1) K-1 at 850 K, which is less than half the KL(D) of SnS at the same temperature. Further calculations following the Allen-Feldman model suggest the additional off-diagonal lattice thermal conductivity K-L(OD) contributed by wavelike tunneling phonons. The KL(OD) becomes pronounced at the high temperature (0.17 W m(-1) K-1 at 850 K) and leads to a deviation of the temperature dependence of K-L from T-1 to T-0.76, suggesting the potential lattice anharmonicity in BaSnS2. Further analyses indicate BaSnS2 has over 68% of K-L contributed by optical phonons. We show this uncommon optical phonon dominated K-L is due to the relatively high group velocities of optical phonons in BaSnS2. The phonon mode visualization suggests these relatively high-velocity optical phonons correspond to the antiphase vibrations in BaSnS2 monolayers, which is originated from the unique permutation of SnS3 tetrahedra. Finally, by investigating the mode-resolved group velocity, relaxation time, and Gruneisen parameter, we attribute the intrinsic low K-L of BaSnS2 to the soft lattice and the relatively high lattice anharmonicity induced by the Ba-S weak bonding and Sn(II) lone-pair electrons. Our study explicitly analyzes the microscopic mechanism of optical phonon dominated heat transport in BaSnS2 and suggests it worthy of further experimental studies as an intrinsic low-KL material.

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