English

Thermal conductivity in intermetallic clathrates: A first principles perspective

Materials Science 2021-01-14 v2

Abstract

Inorganic clathrates such as Ba8_8Gax_{x}Ge46x_{46-x} and Ba8_8Alx_{x}Si46x_{46-x} commonly exhibit very low thermal conductivities. A quantitative computational description of this important property has proven difficult, in part due to the large unit cell, the role of disorder, and the fact that both electronic carriers and phonons contribute to transport. Here, we conduct a systematic analysis of the temperature and composition dependence of low-frequency modes associated with guest species in Ba8_8Gax_{x}Ge46x_{46-x} and Ba8_8Alx_{x}Si46x_{46-x} ("rattler modes"), as well as of thermal transport in stoichiometric Ba8_8Ga16_{16}Ge30_{30}. To this end, we account for phonon-phonon interactions by means of temperature dependent effective interatomic force constants (TDIFCs), which we find to be crucial in order to achieve an accurate description of the lattice part of the thermal conductivity. While the analysis of the thermal conductivity is often largely focused on the rattler modes, here, it is shown that at room temperatures modes with ω10meV\hbar\omega\gtrsim\,10\,\text{meV} account for 50\%\ of lattice heat transport. Finally, the electronic contribution to the thermal conductivity is computed, which shows the Wiedemann-Franz law to be only approximately fulfilled. As a result, it is crucial to employ the correct prefactor when separating electronic and lattice contributions for experimental data.

Keywords

Cite

@article{arxiv.1807.01502,
  title  = {Thermal conductivity in intermetallic clathrates: A first principles perspective},
  author = {Daniel O. Lindroth and Joakim Brorsson and Erik Fransson and Fredrik Eriksson and Anders Palmqvist and Paul Erhart},
  journal= {arXiv preprint arXiv:1807.01502},
  year   = {2021}
}

Comments

12 pages, 7 figures

R2 v1 2026-06-23T02:50:23.430Z