Lattice Thermal Conductivity and Thermoelectric Properties of Topological Semimetals
ORAL
Abstract
Topological semimetals exhibit unique electronic and transport properties that make them promising candidates for advanced thermal management and thermoelectric applications. Here, we study theoretically the lattice thermal conductivities κL of topological materials including WTe2, MoTe2, Ta3S2, Bi4I4, and Bi4Br4. In particular, we compute κL based on the Debye temperatures obtained through various approaches, including mechanical properties, phonon spectra, and machine learning simulations. We further validate the results via first-principles density functional theory (DFT) calculations of κL via direction evaluations of the third-order anharmonic force constants. The results indicate that using Debye temperature remains an efficient and relatively accurate method for estimating the lattice thermal conductivity. Finally, we also compute other electronic and transport properties of the topological semimetals under study and discuss their potential in transverse thermoelectric applications.
*This work is supported by the Air Force Office of Scientific Research (AFOSR) under Award No. FA2386-21-1-4060. The calculations were performed on the Frontera computing system at the Texas Advanced Computing Center made possible by NSF Award No. OAC-1818253.
–
Presenters
-
Abishek Khatri
- University of Alabama at Birmingham