Ultra-low lattice thermal conductivity of MgPbTe -- A first principles study
arXiv:2101.08397
Abstract
Thermoelectric technology is an alternate way to efficiently utilize the energy by converting waste heat into electricity. Thermoelectric requires material with low thermal conductivity to improves its thermoelectric performance. In this work, by solving Boltzmann transport equation based on first principles calculations, we report an ultra-low room temperature thermal conductivity of 2.08 WmK and 2.9 WmK along c-axis and a-axis respectively for pure MgPbTe. To explain this ultra-low thermal conductivity, we analyzed the elastic constants, phonon group velocity, phonon-phonon scattering and contribution from transverse acoustic, longitudinal acoustic and optical phonon branches. We also report the thermal conductivity of MgPbTe nanostructures. At 50 nm, the room temperature thermal conductivity of MgPbTe is 0.957 WmK and 1.459 WmK along c-axis and a-axis respectively. Ultra-low thermal conductivity unraveled in this work shows MgPbTe would a promising material for thermoelectric applications.
References in corpus (3)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Necessary and Sufficient Elastic Stability Conditions in Various Crystal Systems
- First-principles calculations of phonon frequencies, lifetimes and spectral functions from weak to strong anharmonicity: the example of palladium hydrides