Multiple Synergistic Effects Induced by Ge Doping Enhance the Thermoelectric Performance of n-Type PbTe

Abstract

The strong coupling between electrical and thermal transport in thermoelectric (TE) materials remains a formidable challenge for achieving high performance. In this work, we propose a Cu/Ge co-doping strategy to synergistically optimize the thermoelectric properties of n-type PbTe. Ge, with its smaller ionic radius, expands the tetrahedral interstitial spaces of the PbTe lattice, thereby promoting the interstitial solid solution of Cu and increasing the room-temperature Hall carrier concentration by approximately 60%. This, together with the Ge-induced band flattening effect, optimizes the electrical transport properties. Moreover, the lattice softening effect induced by Ge doping significantly reduces the lattice thermal conductivity. As a result, the Cu0.002Pb0.99Ge0.01Te sample achieves a peak zT of ~1.4 at 673 K, with an average power factor PFavg of ~30 μW cm-1 K-2 and an average zTavg of ~1.0 in the temperature range of 300-723 K. This work provides valuable insights for further optimization of PbTe-based thermoelectric materials.

Supplementary files

Article information

Article type
Paper
Submitted
25 Mar 2026
Accepted
30 Apr 2026
First published
01 May 2026

J. Mater. Chem. A, 2026, Accepted Manuscript

Multiple Synergistic Effects Induced by Ge Doping Enhance the Thermoelectric Performance of n-Type PbTe

J. Luo, X. Tan, Q. Deng, R. Li, F. Feng, Z. Zhao, L. Lin and R. Ang, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D6TA02567F

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