Abstract
Exsolution-derived catalysts feature robust metal–support interactions that enhance catalytic performance; yet achieving precise control over exsolution dynamics in multicomponent oxides remains challenging. In this study, we demonstrate that exsolution behavior in high-entropy oxides (HEOs) can be rationally tuned through coupled lattice- and valence-engineering to create a highly active and selective catalyst for acetylene semi-hydrogenation. Incorporation of Li+ into a rock salt-structured HEO (LiNiMgCuZnCoOx and LiHEO) induces local lattice distortion, generates oxygen vacancies, and partially oxidizes Co sites from Co2+ to Co3+, collectively modulating local charge redistribution. This strategy enables facilitated Cu nanoparticle exsolution and alters the exsolution sequence from Cu0 > Ni0 > Co0 in pristine HEO to Cu0 > Co0 > Ni0 in the LiHEO. The resulting catalyst via controlled exsolution exhibits superior activity and ethylene selectivity, outperforming state-of-the-art transition metal systems. This work establishes entropy-enabled lattice and valence engineering as a facile route to programmable exsolution for enhanced catalysis.
| Original language | English |
|---|---|
| Article number | e9920205 |
| Journal | Angewandte Chemie - International Edition |
| Volume | 65 |
| Issue number | 28 |
| DOIs | |
| State | Published - Jul 6 2026 |
Keywords
- acetylene semi-hydrogenation
- heterogeneous catalysis
- high entropy oxides
- lattice engineering
- metal exsolution
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