Abstract
CoSb3-based skutterudites have emerged as promising candidates for midtemperature thermoelectric (TE) applications. However, their further performance enhancement is hindered by intrinsically high lattice thermal conductivity and strong intercoupling among TE transport parameters. In this work, we introduce low-melting-point Sb2O3 as an oxidizing agent into the classical Yb0.3Co4Sb12 system via a melt-spinning technique to optimize its TE transport properties. In situ oxidation generates high-melting-point Yb2O3 nanoprecipitates within the matrix while simultaneously reducing the Yb filling fraction. To address this, we employ a stoichiometric compensation strategy by incorporating additional Yb:Sb2O3 in a 2:1 ratio, thereby achieving controlled Yb2O3 nanoparticle precipitation while maintaining optimal Yb filling. The engineered oxide nanophase exhibits dual functionality: (1) carrier energy filtering enhances the power factor to 61 μW cm–1 K–2, and (2) multiscale phonon scattering suppresses the lattice thermal conductivity to 0.4 W m–1 K–1. These synergistic effects yield a record-high peak ZT of 1.58 at 873 K (a 32% enhancement) and an exceptional average ZT of 1.05 across 300–873 K in the Yb0.36Co4Sb12/0.03 Sb2O3 composite. This work established a paradigm for decoupling electronic and phonon transport through nanophase precision oxide nanophase engineering.
| Original language | English |
|---|---|
| Pages (from-to) | 2069-2077 |
| Number of pages | 9 |
| Journal | ACS Applied Materials and Interfaces |
| Volume | 18 |
| Issue number | 1 |
| DOIs | |
| State | Published - 14 Jan 2026 |
Keywords
- YbOnanoparticles
- lattice thermal conductivity
- skutterudites
- thermoelectric properties
- ytterbium filling
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