Mapping the Configuration Space of Half-Heusler Compounds via Subspace Identification for Thermoelectric Materials Discovery

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Main Authors: Pak, Angela, Ciesielski, Kamil, Wróblewska, Maria, Toberer, Eric S., Ertekin, Elif
Format: Preprint
Published: 2025
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author Pak, Angela
Ciesielski, Kamil
Wróblewska, Maria
Toberer, Eric S.
Ertekin, Elif
author_facet Pak, Angela
Ciesielski, Kamil
Wróblewska, Maria
Toberer, Eric S.
Ertekin, Elif
contents Half-Heuslers are a promising family for thermoelectric (TE) applications, yet only a small fraction of their potential chemistries has been experimentally explored. In this work, we introduce a distinct computational high-throughput screening approach designed to identify underexplored yet promising material subspaces, and apply it to half-Heusler thermoelectrics. We analyze 1,126 half-Heuslers satisfying the $``$18 valence electron rule $''$, including 332 predicted to be semiconductors, using electronic structure calculations, semi-empirical transport models, and thermoelectric quality factor $β$. Unlike conventional filtering workflows, our approach employs statistical analysis of candidate material groups to uncover trends in their collective behavior, providing robust insights and minimizing reliance on uncertain predictions for individual compounds. Our findings link $n$-type performance to ultra-high mobility at conduction band edges and $p$-type performance to high band degeneracy. Statistical correlations reveal elemental subspaces associated with high $β$. We identify two primary (Y- and Zr-containing) and two secondary (Au- and Ir-containing) subspaces that reinforce key physical design principles, making them promising candidates for further exploration. These recommendations align with previous experimental results on yttrium pnictides. Inspired by these insights, we synthesize and characterize rare-earth gold stannides (REAuSn), finding Sc$_{0.5}$Lu$_{0.5}$AuSn to exhibit low thermal conductivity (0.9-2.3 Wm$^{-1}$K$^{-1}$ at 650 K). This work demonstrates alternative strategies for high throughput screening when using approximate but unbiased models, and offers predictive tools and design strategies for optimizing half-Heusler chemistries for TE performance.
format Preprint
id arxiv_https___arxiv_org_abs_2501_11644
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mapping the Configuration Space of Half-Heusler Compounds via Subspace Identification for Thermoelectric Materials Discovery
Pak, Angela
Ciesielski, Kamil
Wróblewska, Maria
Toberer, Eric S.
Ertekin, Elif
Materials Science
Half-Heuslers are a promising family for thermoelectric (TE) applications, yet only a small fraction of their potential chemistries has been experimentally explored. In this work, we introduce a distinct computational high-throughput screening approach designed to identify underexplored yet promising material subspaces, and apply it to half-Heusler thermoelectrics. We analyze 1,126 half-Heuslers satisfying the $``$18 valence electron rule $''$, including 332 predicted to be semiconductors, using electronic structure calculations, semi-empirical transport models, and thermoelectric quality factor $β$. Unlike conventional filtering workflows, our approach employs statistical analysis of candidate material groups to uncover trends in their collective behavior, providing robust insights and minimizing reliance on uncertain predictions for individual compounds. Our findings link $n$-type performance to ultra-high mobility at conduction band edges and $p$-type performance to high band degeneracy. Statistical correlations reveal elemental subspaces associated with high $β$. We identify two primary (Y- and Zr-containing) and two secondary (Au- and Ir-containing) subspaces that reinforce key physical design principles, making them promising candidates for further exploration. These recommendations align with previous experimental results on yttrium pnictides. Inspired by these insights, we synthesize and characterize rare-earth gold stannides (REAuSn), finding Sc$_{0.5}$Lu$_{0.5}$AuSn to exhibit low thermal conductivity (0.9-2.3 Wm$^{-1}$K$^{-1}$ at 650 K). This work demonstrates alternative strategies for high throughput screening when using approximate but unbiased models, and offers predictive tools and design strategies for optimizing half-Heusler chemistries for TE performance.
title Mapping the Configuration Space of Half-Heusler Compounds via Subspace Identification for Thermoelectric Materials Discovery
topic Materials Science
url https://arxiv.org/abs/2501.11644