Consequences of Medium‐Pore Zeolite Constraints for Alkene Cracking—The Case of <i>n</i> ‐Pentene

R Ruixue Zhao (Department of Chemistry and Catalysis Research Center, Technical University of Munich, Lichtenbergstrasse 4, 85748 Garching, Germany) S Stefan Schallmoser (Department of Chemistry TUM School of Natural Sciences Catalysis Research Center Technical University of Munich Garching Germany) G Gary L. Haller (Department of Chemical and Environmental Engineering Yale University New Haven Connecticut USA) M Maricruz Sanchez‐Sanchez (Department of Chemistry TUM School of Natural Sciences Catalysis Research Center Technical University of Munich Garching Germany) J Johannes A. Lercher (Institute for Integrated Catalysis)

Abstract

ABSTRACT The catalytic cracking of alkenes in zeolites is of fundamental and industrial significance, yet the elementary steps of the mechanism are surprisingly less well established than those of alkane cracking. Here, pentenes were employed as model alkenes to investigate cracking kinetics and pathways on H‐ZSM‐5 ( MFI framework) at 703–843 K. Cracking is initiated from a hydrogen‐bonded alkene, with specific carbenium ions acting as transition states or short‐lived intermediates. Monomolecular cracking, quantified via ethene formation, has an intrinsic activation enthalpy (Δ H ǂ ° int. ) of 167 kJ·mol −1 , which is 26 kJ·mol −1 lower than for n ‐pentane, while maintaining comparable activation entropies (−3 vs. 3 J·mol −1 ·K −1 ), resulting in a 28‐fold higher activity at 773 K. Butene formation follows two temperature‐dependent pathways: dimerization cracking via tertiary‐to‐secondary carbenium ions at 703–733 K (Δ H ǂ ° int.  = 64 kJ·mol −1 ) and monomolecular cracking involving CH 3 + formation at 813–843 K (Δ H ǂ ° int.  = 184 kJ·mol −1 ). Extending the analysis to other medium‐pore zeolite frameworks such as TON and FER demonstrates that narrower pore systems suppress activity by increasing Δ H ǂ ° int. , whereas extra‐framework aluminum oxide promotes reactivity by entropically shifting the transition state to a later stage. Together, these results establish alkene cracking in zeolites as an enthalpy–entropy–controlled process dictated by topology and local chemical environment.

Article Details

Volume / Issue Vol. 65, Issue 25
Published June 15, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (5)

R

Ruixue Zhao

Department of Chemistry and Catalysis Research Center, Technical University of Munich, Lichtenbergstrasse 4, 85748 Garching, Germany

S

Stefan Schallmoser

Department of Chemistry TUM School of Natural Sciences Catalysis Research Center Technical University of Munich Garching Germany

G

Gary L. Haller

Department of Chemical and Environmental Engineering Yale University New Haven Connecticut USA

M

Maricruz Sanchez‐Sanchez

Department of Chemistry TUM School of Natural Sciences Catalysis Research Center Technical University of Munich Garching Germany

J

Johannes A. Lercher

Institute for Integrated Catalysis