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Electronic structure and thermoelectric properties of bismuth telluride and bismuth selenide

Journal of Physics Condensed Matter · 1997 · Vol. 9(2) · pp. 461–470
Sonali MishraS. SatpathyO. Jepsen

Abstract

The electronic structures of the two thermoelectric materials and are studied using density-functional theory with the spin - orbit interaction included. The electron states in the gap region and the chemical bonding can be described in terms of interaction between the atomic p orbitals within the `quintuple' layer. For , we find both the valence-band maximum as well as the conduction-band minimum, each with a nearly isotropic effective mass, to occur at the zone centre in agreement with experimental results. For , we find that the six valleys for the valence-band maximum are located in the mirror planes of the Brillouin zone and they have a highly anisotropic effective mass, leading to an agreement between the de Haas - van Alphen data for the p-doped samples and the calculated Fermi surface. The calculated conduction band, however, has only two minima, instead of the six minima indicated from earlier experiments. The calculated Seebeck coefficients for both p-type and n-type materials are in agreement with the experiments.

Advanced Thermoelectric Materials and DevicesHeusler alloys: electronic and magnetic propertiesChalcogenide Semiconductor Thin FilmsCondensed matter physicsEffective mass (spring–mass system)Bismuth tellurideBrillouin zoneElectronic structureElectronic band structureSemimetalFermi surfaceThermoelectric effectMaterials science
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References
Electrical and optical properties of some M2v−bN3vi−b semiconductors
Journal of Physics and Chemistry of Solids · 1957 · 430 citations
Linear methods in band theory
Physical review. B, Solid state · 1975 · 6,496 citations
Effect of quantum-well structures on the thermoelectric figure of merit
Physical review. B, Condensed matter · 1993 · 3,657 citations
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