A dual-site approach in high-entropy oxide aerogels creates active and selective reverse water–gas shift catalysts

Abstract

High-entropy oxides consist of 4 or more equimolar or near-equimolar elements stabilized in a crystalline phase. The inherently slow atomic diffusion in these materials holds promise for creating sinter-resistant high-temperature catalysts, but most reported synthetic methods create multi-metal materials with low surface area. Here, we introduce high-entropy rare-earth oxide aerogels (HERAs) as a route to unlock the nearly unlimited compositional versatility of high-entropy oxides in an architected nanostructure with high surface area (>130 m2 g-1). We demonstrate that a base oxide composition of (YZrCeHf)Ox readily hosts catalytically relevant transition metals (Ni, Co, Fe) to effectively catalyze the reverse water–gas shift (RWGS) reaction: CO2 + H2 → CO + H2O. A high-entropy composition comprising 2.5 at.% Ni and 20% Fe in (YZrCeHf)Ox aerogel is an exceptionally active, selective, and stable catalyst, with no loss of CO2 conversion over 90 h at 500°C and no CH4 byproduct detected.

Supplementary files

Article information

Article type
Paper
Submitted
04 Nov 2025
Accepted
03 Feb 2026
First published
03 Feb 2026

J. Mater. Chem. A, 2026, Accepted Manuscript

A dual-site approach in high-entropy oxide aerogels creates active and selective reverse water–gas shift catalysts

T. Novak, M. BUck, A. E. Herzog, J. J. Kim, B. M. Hudak, R. DeBlock, E. R. Glaser, M. D. Johannes and D. Rolison, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D5TA08951D

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