All-scale hierarchical thermoelectrics: MgTe in PbTe facilitates valence band convergence and suppresses bipolar thermal transport for high performance

Zhao, L. D. ; Wu, H. J. ; Hao, S. Q. ; Wu, C. I. ; Zhou, X. Y. ; Biswas, K. ; He, J. Q. ; Hogan, T. P. ; Uher, C. ; Wolverton, C. ; Dravid, V. P. ; Kanatzidis, M. G. (2013) All-scale hierarchical thermoelectrics: MgTe in PbTe facilitates valence band convergence and suppresses bipolar thermal transport for high performance Energy & Environmental Science, 6 (11). p. 3346. ISSN 1754-5692

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Official URL: http://doi.org/10.1039/C3EE42187B

Related URL: http://dx.doi.org/10.1039/C3EE42187B

Abstract

We report a high ZT of ∼2.0 at 823 K for 2% Na-doped PbTe with 6% MgTe with excellent thermal stability. We attribute the high thermoelectric performance to a synergistic combination of enhanced power factor, reduction of the lattice thermal conductivity and simultaneous suppression of bipolar thermal conductivity. MgTe inclusion in PbTe owns triple functions: the Mg alloying within the solubility limit in PbTe modifies the valence band structure by pushing the two valence bands (L and Σ bands) closer in energy, thereby facilitating charge carrier injection. When the solubility limit of Mg is exceeded, ubiquitous endotaxial nanostructures form, which when coupled with mesoscale microstructuring results in a very low (lattice) thermal conductivity through all-scaled length phonon scattering. Meanwhile, most significantly, the Mg alloying enlarges the energy gap of conduction band (C band) and light valence band (L band), thereby suppresses the bipolar thermal conductivity through an increase in band gap.

Item Type:Article
Source:Copyright of this article belongs to Royal Society of Chemistry
ID Code:128054
Deposited On:03 Nov 2022 05:41
Last Modified:11 Nov 2022 10:06

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