Reaction Discovery in Porous Materials Using Periodic Nanoreactor Molecular Dynamics

D Daniel Deißenbeck (Institute for Physical Chemistry, Heinrich Heine University D¨usseldorf Uni versit¨atsstraße 1 40225 D¨usseldorf Germany) P Patrick Meier (Institute for Physical Chemistry, Heinrich Heine University D¨usseldorf Uni versit¨atsstraße 1 40225 D¨usseldorf Germany) W Wassja A. Kopp (Institute for Physical Chemistry, Heinrich Heine University D¨usseldorf Uni versit¨atsstraße 1 40225 D¨usseldorf Germany) A Anthony D. Debellis (Quantum Chemistry and Hybrid Modeling Research BASF Corporation Tarrytown NY 10591 USA) J Jan Meisner (Institute for Physical Chemistry, Heinrich Heine University Düsseldorf, Universitätsstr. 1, 40225 Düsseldorf, Germany)

Abstract

Abstract Understanding catalytic processes is essential for advancing energy‐efficient molecular transformations. In heterogeneous catalysis, porous materials such as zeolites play a central role due to their structural complexity and large surface area. Here, we present a periodic ab initio nanoreactor molecular dynamics (NMD) approach to investigate the reaction network of selective catalytic reduction (SCR) of NO over copper‐exchanged chabazite zeolites. This method enables autonomous discovery of both established and previously unreported pathways, including a water‐assisted tautomerization mechanism that facilitates formation and a novel radical‐driven route to . Notably, NMD simulations also capture reactivity involving Brønsted acid sites of the zeolite framework. By using automated reaction detection, a comprehensive reaction network was constructed, which elucidates the formation of both desired and undesired products. Refinement of the reaction path including free energy corrections by computing the phonon spectrum allows to make quantitative statements about the discovered reactions. The results of this work provide insight into the side‐reactions of SCR, and also demonstrate the versatility of NMD for agnostic reaction discovery of complex systems such as heterogeneous catalysis.

Article Details

Volume / Issue Vol. 65, Issue 6
Published February 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (5)

D

Daniel Deißenbeck

Institute for Physical Chemistry, Heinrich Heine University D¨usseldorf Uni versit¨atsstraße 1 40225 D¨usseldorf Germany

P

Patrick Meier

Institute for Physical Chemistry, Heinrich Heine University D¨usseldorf Uni versit¨atsstraße 1 40225 D¨usseldorf Germany

W

Wassja A. Kopp

Institute for Physical Chemistry, Heinrich Heine University D¨usseldorf Uni versit¨atsstraße 1 40225 D¨usseldorf Germany

A

Anthony D. Debellis

Quantum Chemistry and Hybrid Modeling Research BASF Corporation Tarrytown NY 10591 USA

J

Jan Meisner

Institute for Physical Chemistry, Heinrich Heine University Düsseldorf, Universitätsstr. 1, 40225 Düsseldorf, Germany