Thermodynamic surface reconstruction governs catalytic behavior in high-entropy alloys

Fuente: arXiv
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Main Authors: Kim, Taegyeong, Kim, Youngtak, Subramanian, Sathya Sheela, Gu, Geun Ho
Format: Preprint
Published: 2026
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author Kim, Taegyeong
Kim, Youngtak
Subramanian, Sathya Sheela
Gu, Geun Ho
author_facet Kim, Taegyeong
Kim, Youngtak
Subramanian, Sathya Sheela
Gu, Geun Ho
contents High-entropy alloys are widely modeled as homogeneously mixed surfaces, yet the validity of this assumption for catalytic prediction remains unclear. Here, we reproduce high-throughput experimental measurements using thermodynamic simulations and show that surface ordering is essential for accurately capturing the compositional activity landscape. Homogeneous surface models fail to reproduce experimentally observed trends and, in some regimes, perform at or below the random-selection baseline. In contrast, thermodynamically annealed surfaces restore meaningful agreement with the experimental activity landscape and substantially improve the recovery of active compositions. Segregation energetics reveal strong surface enrichment of preferred elements, producing chemically selective interfaces that collapse the broad adsorption-energy spectrum of random alloys into a narrower distribution of catalytically favorable sites. By linking predictive error to the degree of short-range order, we identify a validity boundary for homogeneous models and establish the thermodynamically selected surface state as a governing parameter for predictive catalysis in multicomponent alloys.
format Preprint
id arxiv_https___arxiv_org_abs_2604_25454
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Thermodynamic surface reconstruction governs catalytic behavior in high-entropy alloys
Kim, Taegyeong
Kim, Youngtak
Subramanian, Sathya Sheela
Gu, Geun Ho
Materials Science
High-entropy alloys are widely modeled as homogeneously mixed surfaces, yet the validity of this assumption for catalytic prediction remains unclear. Here, we reproduce high-throughput experimental measurements using thermodynamic simulations and show that surface ordering is essential for accurately capturing the compositional activity landscape. Homogeneous surface models fail to reproduce experimentally observed trends and, in some regimes, perform at or below the random-selection baseline. In contrast, thermodynamically annealed surfaces restore meaningful agreement with the experimental activity landscape and substantially improve the recovery of active compositions. Segregation energetics reveal strong surface enrichment of preferred elements, producing chemically selective interfaces that collapse the broad adsorption-energy spectrum of random alloys into a narrower distribution of catalytically favorable sites. By linking predictive error to the degree of short-range order, we identify a validity boundary for homogeneous models and establish the thermodynamically selected surface state as a governing parameter for predictive catalysis in multicomponent alloys.
title Thermodynamic surface reconstruction governs catalytic behavior in high-entropy alloys
topic Materials Science
url https://arxiv.org/abs/2604.25454