Spinodal Decomposition and Nucleation and Growth as a Means to Bulk Nanostructured Thermoelectrics: Enhanced Performance in Pb1-xSnxTe−PbS
Top Cited Papers
- 13 July 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 129 (31) , 9780-9788
- https://doi.org/10.1021/ja071875h
Abstract
The solid-state transformation phenomena of spinodal decomposition and nucleation and growth are presented as tools to create nanostructured thermoelectric materials with very low thermal conductivity and greatly enhanced figure of merit. The systems (PbTe)1-x(PbS)x and (Pb0.95Sn0.05Te)1-x(PbS)x are not solid solutions but phase separate into PbTe-rich and PbS-rich regions to produce coherent nanoscale heterogeneities that severely depress the lattice thermal conductivity. For x > ∼0.03 the materials are ordered on three submicrometer length scales. Transmission electron microscopy reveals both spinodal decomposition and nucleation and growth phenomena the relative magnitude of which varies with x. We show that the (Pb0.95Sn0.05Te)1-x(PbS)x system, despite its nanostructured nature, maintains a high electron mobility (>100 cm2/V·s at 700 K). At x ∼ 0.08 the material achieves a very low room-temperature lattice thermal conductivity of ∼0.4 W/m·K. This value is only 28% of the PbTe lattice thermal conductivity at room temperature. The inhibition of heat flow in this system is caused by nanostructure-induced acoustic impedance mismatch between the PbTe-rich and PbS-rich regions. As a result the thermoelectric properties of (Pb0.95Sn0.05Te)1-x(PbS)x at x = 0.04, 0.08, and 0.16 were found to be superior to those of PbTe by almost a factor of 2. The relative importance of the two observed modes of nanostructuring, spinodal decomposition and nucleation and growth, in suppressing the thermal conductivity was assessed in this work, and we can conclude that the latter mode seems more effective in doing so. The promise of such a system for high efficiency is highlighted by a ZT ∼ 1.50 at 642 K for x ∼ 0.08.Keywords
This publication has 34 references indexed in Scilit:
- Coexistence of Large Thermopower and Degenerate Doping in the Nanostructured Material Ag0.85SnSb1.15Te3Chemistry of Materials, 2006
- Thermal conductivity of doped PbTe-based solid solutions with off-center impuritiesSemiconductors, 2006
- Thermoelectric figure of merit in solid solutions with phonon scattering by off-center impuritiesSemiconductors, 2003
- Thermoelectric figure of merit enhancement in a quantum dot superlatticeNanotechnology, 2000
- Spontaneously assembling periodic composition-modulated InGaAsP structuresSemiconductors, 1999
- 1.3 µm GaAs-based laser using quantum dotsobtained byactivated spinodal decompositionElectronics Letters, 1999
- Experimental determinations of the Lorenz numberJournal of Materials Science, 1993
- Thermal boundary resistanceReviews of Modern Physics, 1989
- Dynamics of fluctuations and spinodal decomposition in polymer blends. IIThe Journal of Chemical Physics, 1981
- Temperature Dependence of the Effective Masses in PbTePhysical Review B, 1964