The effect of Ag+ on the thermoelectric properties of Sm3+- and Ti4+- co-doped KSr2Nb5O15 ceramics: a combined first-principles and experimental study on synergistic optimization of thermal and electrical transport

Abstract

Strontium potassium niobate-based ceramics doped with different concentrations of Ag+ were prepared in this work, aiming to regulate the synergistic interplay between electronic and thermal transport. Ag+ doping increases the carrier concentration, leading to a corresponding enhancement in the Seebeck coefficient and a significant improvement in electronic transport. Concurrently, a low thermal conductivity of 1.938 W m−1 K−1 was obtained at 1073 K, representing a 24% reduction compared to the undoped sample. The synergistic effect of a higher power factor and a relatively lower thermal conductivity resulted in a thermoelectric figure of merit (ZT) of 0.202 at 1073 K for the Sm0.04K0.86Ag0.1Sr2Nb4.96Ti0.04O15 ceramic, which is 71% higher than that of its Ag+-free counterpart. Furthermore, both the computational model KSmAg2Sr8Nb19TiO60 and the experimental composition Sm0.04K0.66Ag0.3Sr2Nb4.96Ti0.04O15, which possess higher Ag+ content, exhibited the highest Image ID:d6tc01288d-t1.gif. This work provides ideas for simultaneously enhancing electrical transport and suppressing thermal conductivity in oxide thermoelectrics, and improving the thermoelectric performance of strontium potassium niobate-based ceramics.

Graphical abstract: The effect of Ag+ on the thermoelectric properties of Sm3+- and Ti4+- co-doped KSr2Nb5O15 ceramics: a combined first-principles and experimental study on synergistic optimization of thermal and electrical transport

Supplementary files

Article information

Article type
Paper
Submitted
23 Apr 2026
Accepted
12 May 2026
First published
29 May 2026

J. Mater. Chem. C, 2026, Advance Article

The effect of Ag+ on the thermoelectric properties of Sm3+- and Ti4+- co-doped KSr2Nb5O15 ceramics: a combined first-principles and experimental study on synergistic optimization of thermal and electrical transport

Q. Chen, S. Cao, Z. Wei, B. Zhai, J. Xu and F. Gao, J. Mater. Chem. C, 2026, Advance Article , DOI: 10.1039/D6TC01288D

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