Steering Zeolite Brønsted Acidity and Catalytic Consequence Through Manipulating the Coordination Environment of Framework Aluminum

Y Youdong Xing (Interdisciplinary Institute of NMR and Molecular Sciences, Key Laboratory of Hubei Province for Coal Conversion and New Carbon Materials, School of Chemistry and Chemical Engineering) X Xianfeng Yi (State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Innovation Academy for Precision Measurement Science and Technology) F Fengqing Liu (Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Department of Chemistry) Y Yao Xiao (School of Chemistry and Chemical Engineering) W Wanyi Gan (Interdisciplinary Institute of NMR and Molecular Sciences Hubei Province for Coal Conversion and New Carbon Materials School of Chemistry and Chemical Engineering Wuhan University of Science and Technology Wuhan P.R. China) M Molly Meng‐Jung Li (Department of Applied Physics The Hong Kong Polytechnic University Hong Kong China) A Anmin Zheng (Interdisciplinary Institute of NMR and Molecular Sciences, Key Laboratory of Hubei Province for Coal Conversion and New Carbon Materials, School of Chemistry and Chemical Engineering)

Abstract

ABSTRACT The strong acidity of Brønsted acid sites in zeolites often leads to uncontrollable reactions and rapid deactivation. Therefore, strategically weakening zeolite acidity is essential for balancing reactivity with stability. The local coordination environment of framework aluminum usually governs its acidity. Hydroxylation of framework aluminum is often inevitable under high‐temperature and humid “working” conditions; however, the impact of hydroxyl coordination on the relevant acidity and catalytic behavior remains unclear. Here, we demonstrate how hydroxylation of framework aluminum strategically moderates acidity and enhances catalytic stability. Density functional theory (DFT) calculations predict that an increase in the hydroxyl groups coordinated to framework aluminum leads to a progressive weakening of Brønsted acidity. We experimentally validate this prediction by precisely manipulating hydroxylation in ZSM‐5 zeolite via steaming treatment and analyzing the effects using 2D NMR spectroscopy with 2– 13 C‐acetone as a probe molecule. The hydroxylated aluminum sites exhibit reduced adsorption and activation of methanol in the dehydration reaction, consistent with their weaker acidity. Catalytic tests reveal that the hydroxylated samples significantly enhance catalyst lifespan in the MTO process, while preserving stable reactivity. These findings provide key insights into how coordination perturbations influence zeolite acidity and catalytic performance, offering valuable guidance for designing zeolites with targeted catalytic functions.

Article Details

Volume / Issue Vol. 65, Issue 10
Published March 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

Y

Youdong Xing

Interdisciplinary Institute of NMR and Molecular Sciences, Key Laboratory of Hubei Province for Coal Conversion and New Carbon Materials, School of Chemistry and Chemical Engineering

X

Xianfeng Yi

State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Innovation Academy for Precision Measurement Science and Technology

F

Fengqing Liu

Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Department of Chemistry

Y

Yao Xiao

School of Chemistry and Chemical Engineering

W

Wanyi Gan

Interdisciplinary Institute of NMR and Molecular Sciences Hubei Province for Coal Conversion and New Carbon Materials School of Chemistry and Chemical Engineering Wuhan University of Science and Technology Wuhan P.R. China

M

Molly Meng‐Jung Li

Department of Applied Physics The Hong Kong Polytechnic University Hong Kong China

A

Anmin Zheng

Interdisciplinary Institute of NMR and Molecular Sciences, Key Laboratory of Hubei Province for Coal Conversion and New Carbon Materials, School of Chemistry and Chemical Engineering