Oscillatory redox behavior in oxides: Cyclic surface reconstruction and reactivity modulation via the Mars–van Krevelen mechanism

X Xianhu Sun (School of Chemical Sciences) D Dongxiang Wu (Department of Mechanical Engineering and Materials Science and Engineering Program, State University of New York) J Jianyu Wang S Shyam B. Patel (Department of Mechanical Engineering and Materials Science and Engineering Program, State University of New York) W Wenhui Zhu (Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry) J Ji Yang (New Cornerstone Science Laboratory, State Key Laboratory for Physical Chemistry of Solid Surfaces, Collaborative Innovation Center of Chemistry for Energy Materials, and National & Local Joint Engineering Research Center of Preparation Technology of Nanomaterials, College of Chemistry and Chemical Engineering) T Timothy T. Yang (Department of Mechanical Engineering and Materials Science, University of Pittsburgh) S Shuonan Ye X Xiaobo Chen Y Yaguang Zhu (Andlinger Center for Energy and Environment) L Linna Qiao M Meng Li S Stephen D. House (Department of Chemical and Petroleum Engineering, University of Pittsburgh) J Ji Su (Energy Storage and Distributed Resources Division, Lawrence Berkeley National Laboratory) W Wissam A. Saidi (Department of Mechanical Engineering and Materials Science, University of Pittsburgh) J Jorge Anibal Boscoboinik J Judith C. Yang R Renu Sharma (Materials Science and Engineering Division, National Institute of Standards and Technology) G Guangwen Zhou

Abstract

The breaking of translational symmetry at oxide surfaces gives rise to coordinatively unsaturated cations/anions and surface restructuring—key factors that govern surface reactivity. Using direct in situ environmental transmission electron microscopy (TEM) observations along with atomistic modeling, we report oscillatory redox behavior in CuO under H 2 , where cyclic surface reconstruction and reactivity modulation occur via the Mars–van Krevelen (MvK) mechanism. We observe self-switching between oxygen-rich and oxygen-deficient surface reconstructions, alternately activating and deactivating the surface for H 2 O formation. During periods of chemical inactivity, the oxygen-deficient surface undergoes slow reoxidation via lattice oxygen diffusing from subsurface and bulk reservoirs, restoring the active oxygen-rich surface termination. The inherent disparity in chemical activity among undercoordinated surface ions, along with sluggish subsurface-to-surface oxygen replenishment, drives this oscillatory redox cycle, modulating H 2 -induced loss of lattice oxygen at the surface and its delayed replenishment from the subsurface. This creates spatiotemporally separated redox steps at the oxide surface. The phenomena and atomistic insights presented here have significant implications for manipulating the surface reactivity of oxides by tuning the separation of these redox steps.

Article Details

Volume / Issue Vol. 122, Issue 24
Published June 17, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (19)

X

Xianhu Sun

School of Chemical Sciences

D

Dongxiang Wu

Department of Mechanical Engineering and Materials Science and Engineering Program, State University of New York

J

Jianyu Wang

S

Shyam B. Patel

Department of Mechanical Engineering and Materials Science and Engineering Program, State University of New York

W

Wenhui Zhu

Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry

J

Ji Yang

New Cornerstone Science Laboratory, State Key Laboratory for Physical Chemistry of Solid Surfaces, Collaborative Innovation Center of Chemistry for Energy Materials, and National & Local Joint Engineering Research Center of Preparation Technology of Nanomaterials, College of Chemistry and Chemical Engineering

T

Timothy T. Yang

Department of Mechanical Engineering and Materials Science, University of Pittsburgh

S

Shuonan Ye

X

Xiaobo Chen

Y

Yaguang Zhu

Andlinger Center for Energy and Environment

L

Linna Qiao

M

Meng Li

S

Stephen D. House

Department of Chemical and Petroleum Engineering, University of Pittsburgh

J

Ji Su

Energy Storage and Distributed Resources Division, Lawrence Berkeley National Laboratory

W

Wissam A. Saidi

Department of Mechanical Engineering and Materials Science, University of Pittsburgh

J

Jorge Anibal Boscoboinik

J

Judith C. Yang

R

Renu Sharma

Materials Science and Engineering Division, National Institute of Standards and Technology

G

Guangwen Zhou