Compositionally Engineered Non-Equimolar LaCoO3-Based High-Entropy Perovskites with Enhanced Thermoelectric Performance
Jitendra Kumar, David Bérardan, Diana Dragoe, Nita Dragoe, Ashutosh Kumar
Abstract
The decoupling of phonon and electron transport remains a central challenge in the development of high-performance TE materials. Configurational-entropy maximization is widely invoked as a design principle for decoupling phonon and electron transport. This study investigates compositionally engineered LaCoO3-based high-entropy perovskites to determine whether thermoelectric transport can be improved by tuning cation identity and concentration rather than maximizing configurational entropy. La1-xSrx(CoFeMnCrNi)O3 (x=0.0--0.2) and selected non-equimolar A- and B-site perovskite compositions were prepared by solid-state reaction. The obtained samples are predominantly single-phase, as confirmed by X-ray diffraction and Rietveld refinement, consistent with the calculated size-disorder parameters. Multication disorder introduces substantial mass and strain-field fluctuations that promote phonon scattering. All samples exhibit p-type, thermally activated electrical transport consistent with adiabatic SPH. Sr substitution progressively reduces the hopping barrier and ρ, whereas non-equimolar B-site engineering partially recovers electrical transport while retaining low k. La0.9Sr0.1Co0.4Cr0.3Ni0.1Fe0.1Mn0.1O3, featuring a Co-rich and Cr-rich B-site composition, combines Co-associated mixed valence and spin-state degeneracy that sustain a large alpha with Cr-mediated control of carrier concentration and a reduced polaron hopping barrier of 0.19eV. This composition achieves a power factor of 40--43 μW/(m K2) and a zT0.072 at 1100K, approximately 2.7 times that of its equimolar analogue. These results demonstrate that targeted cation chemistry and mass contrast, rather than configurational-entropy maximization alone, provide an effective strategy for balancing electronic and phonon transport in multicomponent oxide TE.
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