First Principles Identification of Active Sites in Heterogeneous Catalysis: A Case Study on Zn <sub>x</sub> Cr <sub>y</sub> O <sub>z</sub> for Syngas Conversion

Y Yulan Han (Department of Chemistry and Biochemistry) J Jiayan Xu (School of Chemistry and Chemical Engineering Queen's University Belfast Belfast UK) J Jiawei Wu (State Key Laboratory and Institute of Elemento-Organic Chemistry, College of Chemistry) C Chenyu Wu (Qingdao Institute for Theoretical and Computational Science, Center for Optics Research and Engineering) X Xiran Cheng W Wenbo Xie (School of Physical Science and Technology ShanghaiTech University Shanghai China) X Xiulian Pan (State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, P. R. China) X Xinhe Bao (State Key Laboratory of Catalysis, Dalian National Laboratory for Clean Energy, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials) Dalian Institute of Chemical Physics) P P. Hu

Abstract

ABSTRACT Discovering next‐generation heterogeneous catalysts calls for embracing the full complexity of active site formation under realistic conditions. Here, we develop a robust machine learning potential (MLP)‐aided computational framework that integrates realistic preparation and reaction conditions to effectively track the formation of active sites and decipher structure‐activity relationships. Using syngas conversion over the Zn x Cr y O z system as a demonstration, we identified that the system preferentially segregates into ZnO and ZnCr 2 O 4 phases, with ZnO forming a monolayer on ZnCr 2 O 4 surfaces under preparation conditions. Under reaction conditions, by deploying CH─O bond dissociation as a descriptor, we found that the ZnO/ZnCr 2 O 4 (100) surface is the active surface. Crucially, we pinpoint geometrically linked oxygen vacancy pairs as the true active sites. Full microkinetic analyses conducted on these active sites yield kinetic results that align well with experimental observations. Beyond elucidating the active structure, a model for designing oxide/oxide catalysts to achieve high activity is generalized, opening new pathways for accelerating catalyst discovery across a wide range of reactions.

Article Details

Volume / Issue Vol. 65, Issue 12
Published March 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

Y

Yulan Han

Department of Chemistry and Biochemistry

J

Jiayan Xu

School of Chemistry and Chemical Engineering Queen's University Belfast Belfast UK

J

Jiawei Wu

State Key Laboratory and Institute of Elemento-Organic Chemistry, College of Chemistry

C

Chenyu Wu

Qingdao Institute for Theoretical and Computational Science, Center for Optics Research and Engineering

X

Xiran Cheng

W

Wenbo Xie

School of Physical Science and Technology ShanghaiTech University Shanghai China

X

Xiulian Pan

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, P. R. China

X

Xinhe Bao

State Key Laboratory of Catalysis, Dalian National Laboratory for Clean Energy, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials) Dalian Institute of Chemical Physics

P

P. Hu