Thermoelectric properties of IV–VI-based heterostructures and superlattices
- 1. Department of Physics, Texas State University, San Marcos, TX 78666 (United States)
- 2. Instituto de Ciências Exatas e Tec., Universidade Federal de Viçosa, Rio Paranaíba, MG (Brazil)
- 3. Departamento de Ciências Naturais, Universidade Federal de São João Del Rei, Caixa Postal 110, São João Del Rei 36300-000, MG (Brazil)
Description
Doping in a manner that introduces anisotropy in order to reduce thermal conductivity is a significant focus in thermoelectric research today. By solving the semiclassical Boltzmann transport equations in the constant scattering time (τ) approximation, in conjunction with ab initio electronic structure calculations, within Density Functional Theory, we compare the Seebeck coefficient (S) and figure of merit (ZT) of bulk PbTe to PbTe/SnTe/PbTe heterostructures and PbTe doping superlattices (SLs) with periodically doped planes. Bismuth and Thallium were used as the n- and p-type impurities, respectively. The effects of carrier concentration are considered via chemical potential variation in a rigid band approximation. The impurity bands near the Fermi level in the electronic structure of PbTe SLs are of Tl s- and Bi p-character, and this feature is independent of the doping concentration or the distance between impurity planes. We observe the impurity bands to have a metallic nature in the directions perpendicular to the doping planes, yet no improvement on the values of ZT is found when compared to bulk PbTe. For the PbTe/SnTe/PbTe heterostructures, the calculated S presents good agreement with recent experimental data, and an anisotropic behavior is observed for low carrier concentrations (n<1018 cm−3). A large value of ZT|| (parallel to the growth direction) of 3.0 is predicted for n=4.7×1018 cm−3 and T=700 K, whereas ZTp (perpendicular to the growth direction) is found to peak at 1.5 for n=1.7×1017 cm−3. Both electrical conductivity enhancement and thermal conductivity reduction are analyzed. - Graphical abstract: Figure of merit for PbTe/SnTe/PbTe heterostructure along the [0 0 1] direction, P.D. Borges, J.E. Petersen, L. Scolfaro, H.W. Leite Alves, T.H. Myers, Improved thermoelectric properties of IV–VI-based heterostructures and superlattices. - Highlights: • Thermoelectric properties of IV–VI-based heterostructures and superlattices. • High figure of merit is predicted for the PbTe/SnTe/PbTe heterostructure. • Nanotechnology has an important role for the development of thermoelectric devices
Availability note (English)
Available from http://dx.doi.org/10.1016/j.jssc.2015.03.027Additional details
Identifiers
- DOI
- 10.1016/j.jssc.2015.03.027;
- PII
- S0022-4596(15)00117-6;
Publishing Information
- Journal Title
- Journal of Solid State Chemistry
- Journal Volume
- 227
- Journal Page Range
- p. 123-131
- ISSN
- 0022-4596
- CODEN
- JSSCBI
INIS
- Country of Publication
- United States
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 47045505
- Subject category
- S37: INORGANIC, ORGANIC, PHYSICAL AND ANALYTICAL CHEMISTRY;
- Descriptors DEI
- BISMUTH; BOLTZMANN EQUATION; COMPARATIVE EVALUATIONS; CONCENTRATION RATIO; DENSITY FUNCTIONAL METHOD; DOPED MATERIALS; ELECTRIC CONDUCTIVITY; ELECTRONIC STRUCTURE; FERMI LEVEL; HETEROJUNCTIONS; LEAD TELLURIDES; NANOTECHNOLOGY; SEMICLASSICAL APPROXIMATION; SUPERLATTICES; THALLIUM; THERMAL CONDUCTIVITY; THERMOELECTRIC MATERIALS; THERMOELECTRIC PROPERTIES; TIN TELLURIDES
- Descriptors DEC
- APPROXIMATIONS; CALCULATION METHODS; CHALCOGENIDES; DIFFERENTIAL EQUATIONS; DIMENSIONLESS NUMBERS; ELECTRICAL PROPERTIES; ELEMENTS; ENERGY LEVELS; EQUATIONS; EVALUATION; INTEGRO-DIFFERENTIAL EQUATIONS; KINETIC EQUATIONS; LEAD COMPOUNDS; MATERIALS; METALS; PARTIAL DIFFERENTIAL EQUATIONS; PHYSICAL PROPERTIES; SEMICONDUCTOR JUNCTIONS; TELLURIDES; TELLURIUM COMPOUNDS; THERMODYNAMIC PROPERTIES; TIN COMPOUNDS; VARIATIONAL METHODS
Optional Information
- Copyright
- Copyright (c) 2015 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.