High-performance ZrNiSn-based half-Heusler thermoelectrics with hierarchical architectures enabled by reactive sintering

X Xin Ai (School of Materials Science and Engineering) Y Yu Wu H Haiyan Lyu L Lars Giebeler W Wenhua Xue A Andrei Sotnikov Y Yumei Wang (Center for Membrane Biology, Department of Biochemistry and Molecular Biology, The University of Texas Health Science Center at Houston McGovern Medical School) Q Qihao Zhang (State Key Laboratory of Synthetic Chemistry, Shanghai Hong Kong Joint Laboratory in Chemical Synthesis, Department of Chemistry) D Denys Makarov Y Yuan Yu G G. Jeffrey Snyder (Department of Materials Science and Engineering) K Kornelius Nielsch R Ran He (Leibniz Institute for Solid State and Materials Research IFW Dresden)

Abstract

Abstract Half-Heusler compounds are promising thermoelectric materials for high-temperature applications, yet their performance is limited by high lattice thermal conductivity. Here, we present an alternative approach to synthesize ZrNiSn-based half-Heusler compounds with hierarchical architectures across multiple length scales. By utilizing short-duration mechanical alloying to produce nonequilibrium precursors, followed by reactive sintering, we enable precise control over phase composition and microstructural features. This approach results in multi-scale architectures comprising interstitial defects, grain boundaries, nanoprecipitates, and pores, enabling strong phonon scattering. The optimized Zr0.75Hf0.25NiSn0.99Sb0.01 alloy exhibits a lattice thermal conductivity as low as 1.9 W m−1 K−1 and a high power factor of 50 µW cm−1 K−2, yielding an impressive dimensionless figure of merit (zT) of 1.33 at 873 K. This performance surpasses that of ZrNiSn-based compounds synthesized via conventional methods such as arc melting and solid-state reaction. Our method, distinguished from conventional melting synthesis approaches through its simplicity, cost-effectiveness, and scalability, provides a versatile framework for achieving efficient hierarchical phonon scattering while preserving high carrier mobility in half-Heusler compounds and highlights the potential of reactive sintering for advancing thermoelectric materials.

Article Details

Volume / Issue Vol. 16, Issue 1
Published July 15, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (13)

X

Xin Ai

School of Materials Science and Engineering

Y

Yu Wu

H

Haiyan Lyu

L

Lars Giebeler

W

Wenhua Xue

A

Andrei Sotnikov

Y

Yumei Wang

Center for Membrane Biology, Department of Biochemistry and Molecular Biology, The University of Texas Health Science Center at Houston McGovern Medical School

Q

Qihao Zhang

State Key Laboratory of Synthetic Chemistry, Shanghai Hong Kong Joint Laboratory in Chemical Synthesis, Department of Chemistry

D

Denys Makarov

Y

Yuan Yu

G

G. Jeffrey Snyder

Department of Materials Science and Engineering

K

Kornelius Nielsch

R

Ran He

Leibniz Institute for Solid State and Materials Research IFW Dresden