Efficient thermoelectricity in SrNbO with energy-dependent relaxation times
arXiv:2111.13871 · doi:10.1103/PhysRevMaterials.4.075404
Abstract
We evaluate theoretically the thermoelectric efficiency of the layered perovskite SrNbO via calculations of the electronic structure and transport coefficients within density-functional theory and Bloch-Boltzmann relaxation-time transport theory. The predicted figure-of-merit tensor , computed with energy-, chemical potential- and temperature-dependent relaxation times, has one component increasing monotonically from around 0.4 at room temperature to 2.4 at 1250 K at an optimal carrier density around 210 cm, while the other components are small. The Seebeck coefficient is about 250 to 300 V/K at optimal doping, and reaches 800 V/K at lower doping. We provide a {\tt python} code implementing various approximations to the energy-dependent relaxation time transport, which can be used to address different systems with an appropriate choice of material parameters.