Ab initio study of the strain dependence of thermopower in electron-doped SrTiO
arXiv:1604.04472 · doi:10.1088/1361-648X/29/6/065501
Abstract
In this paper we explore the different mechanisms that affect the thermopower of a band insulating perovskite (in this case, SrTiO) when subject to strain (both compressive or tensile). We analyze the high temperature, entropy dominated limit and the lower temperature, energy-transport regime. We observe that the effect of strain in the high-temperature Seebeck coefficient is small at the concentration levels of interest for thermoelectric applications. However, the effective mass changes substantially with strain, which produces an opposite effect to that of the degeneracy-breakups produced by strain. In particular, we find that the thermopower can be enhanced by applying tensile strain in the adequate regime. We conclude that the detrimental effect of strain in thermopower due to band splitting is a minor effect that will not hamper the optimization of the thermoelectric properties of oxides with t-active bands by applying strain.
10 pages, 7 figures
References in corpus (6)
- BoltzTraP. A code for calculating band-structure dependent quantities
- Strain Control of Oxygen Vacancies in Epitaxial Strontium Cobaltite Films
- Strongly correlated properties of the thermoelectric cobalt oxide Ca3Co4O9
- Glass-like thermal conductivity in SrTiO3 thermoelectrics induced by A-site vacancies
- Efficient thermoelectric materials using nonmagnetic double perovskites with / band filling
- Electron degeneracy and intrinsic magnetic properties of epitaxial Nb:SrTiO thin-films controlled by defects