First principles reactive flux theory for surface reactions revealing multiple channels and recrossing dynamics

Heterogeneous reactions typically consist of multiple elementary steps whose rate coefficients are of fundamental importance in elucidating the reaction mechanisms and establising micro-kinetic models. Transition state theory (TST) for calculating surface reaction rate coefficients often relies solely on the harmonic approximation of adsorbent vibrations and neglects recrossing dynamics. Here, we combine metadynamics with a more general reactive flux approach to calculate rate coefficients of surface reactions, overcoming these limitations of TST. We apply this approach to a textbook surface reaction, CO oxidation on Pt(111), for which rate constants have been measured, using a full-dimensional neural network potential energy surface constructed from first-principles data. A multi-dimensional free-energy surface is obtained by incorporating three collective variables, yielding rate coefficients for both CO oxidation and the competing CO desorption that agree with experimental data. Our results reveal dynamic recrossing in both reactions, which however arises from distinct physical mechanisms. This approach represents a general framework for calculating rate coefficients of elementary surface processes from first-principles, which is vital for developing predictive kinetic models for heterogenous catalysis. Heterogeneous reactions typically consist of multiple elementary steps whose rate coefficients help in elucidating the reaction mechanism. The authors combine metadynamics with a reactive flux approach to calculate rate coefficients of surface reactions, overcoming limitations of the transition state theory, and demonstrate application to CO oxidation on Pt(111) surfaces.

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Publication Details

Journal
Nature Communications
Published
2026-09-16
DOI
https://doi.org/10.1038/s41467-026-77226-4
Primary Topic
Advanced Physical and Chemical Molecular Interactions
Type
article
Field-Weighted Citation Impact
0.00

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article

First principles reactive flux theory for surface reactions revealing multiple channels and recrossing dynamics

Bin Jiang, Hua Guo, Zhenyu Li, Yongle Li et al.
Nature Communications
Advanced Physical and Chemical Molecular Interactions
article

First principles reactive flux theory for surface reactions revealing multiple channels and recrossing dynamics

Bin Jiang, Hua Guo, Zhenyu Li, Yongle Li, Chen Li, Xiongzhi Zeng
article en

Abstract

Heterogeneous reactions typically consist of multiple elementary steps whose rate coefficients are of fundamental importance in elucidating the reaction mechanisms and establising micro-kinetic models. Transition state theory (TST) for calculating surface reaction rate coefficients often relies solely on the harmonic approximation of adsorbent vibrations and neglects recrossing dynamics. Here, we combine metadynamics with a more general reactive flux approach to calculate rate coefficients of surface reactions, overcoming these limitations of TST. We apply this approach to a textbook surface reaction, CO oxidation on Pt(111), for which rate constants have been measured, using a full-dimensional neural network potential energy surface constructed from first-principles data. A multi-dimensional free-energy surface is obtained by incorporating three collective variables, yielding rate coefficients for both CO oxidation and the competing CO desorption that agree with experimental data. Our results reveal dynamic recrossing in both reactions, which however arises from distinct physical mechanisms. This approach represents a general framework for calculating rate coefficients of elementary surface processes from first-principles, which is vital for developing predictive kinetic models for heterogenous catalysis. Heterogeneous reactions typically consist of multiple elementary steps whose rate coefficients help in elucidating the reaction mechanism. The authors combine metadynamics with a reactive flux approach to calculate rate coefficients of surface reactions, overcoming limitations of the transition state theory, and demonstrate application to CO oxidation on Pt(111) surfaces.

Nature Communications
University of Science and Technology of China (CN), University of New Mexico (US), Quantum Technologies (Sweden) (SE)
National Science Foundation, Alexander von Humboldt-Stiftung, National Natural Science Foundation of China, Chinese Academy of Sciences, Science and Technology Commission of Shanghai Municipality, University of Science and Technology of China, National Science and Technology Major Project, Division of Chemistry
Openalex Percentile: Top 14%
Advanced Physical and Chemical Molecular Interactions
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