High-performance ZrNiSn-based half-Heusler thermoelectrics with hierarchical architectures enabled by reactive sintering
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
Authors (13)
Xin Ai
School of Materials Science and Engineering
Yu Wu
Haiyan Lyu
Lars Giebeler
Wenhua Xue
Andrei Sotnikov
Yumei Wang
Center for Membrane Biology, Department of Biochemistry and Molecular Biology, The University of Texas Health Science Center at Houston McGovern Medical School
Qihao Zhang
State Key Laboratory of Synthetic Chemistry, Shanghai Hong Kong Joint Laboratory in Chemical Synthesis, Department of Chemistry
Denys Makarov
Yuan Yu
G. Jeffrey Snyder
Department of Materials Science and Engineering
Kornelius Nielsch
Ran He
Leibniz Institute for Solid State and Materials Research IFW Dresden