Engineering Peripheral Metal‐Oxide Catalysis: Interparticle Spacing in Cu/ZrO <sub>2</sub> Catalysts for Methanol Synthesis by CO <sub>2</sub> Hydrogenation

I Iván López‐Luque (ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain) J Jannis Hack (School of Engineering Institute of Materials and Process Engineering ZHAW Zurich University of Applied Sciences Technikumstrasse 9 Winterthur 8401 Switzerland) T Tania Ródenas (ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain) W Wilson Henao (ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain) B Bernat Mundet (Institut Català de Nanociència i Nanotecnología (ICN2) Campus UAB Bellaterra (Cerdanyola del Vallès) Barcelona 08193 Spain) P Prathamesh Patil (Centre for Electrochemistry and Surface Technology TFZ–Wiener Neustadt Viktor‐Kaplan‐Strasse 2 Wr. Neustadt 2700 Austria) C Christian M. Pichler C Carlo Marini (ALBA Synchrotron Light Source) G Giovanni Agostini (ELETTRA‐Sincrotrone Trieste S.C.p.A Strada Statale 14–km 163 Trieste Basovizza 34149 Italy) D Daniel M. Meier (Institute of Materials and Process Engineering (IMPE)) G Gonzalo Prieto (ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain)

Abstract

Abstract The periphery surrounding oxide‐supported metal nanoparticles plays a crucial role in many catalytic reactions that exhibit strong metal‐oxide promotional effects. Engineering this catalytically active periphery, where kinetically relevant surface intermediates are efficiently turned over, offers a pathway to optimized performance, yet it remains challenging due to the need for precise control over nanospatial catalyst features. Herein, we address this subject for the relevant case of methanol synthesis by CO 2 hydrogenation on Cu/ZrO 2 catalysts. The methanol synthesis rate reaches a maximum at a surface‐to‐surface Cu interparticle distance of ca. 15 nm. Operando modulation–excitation diffuse reflectance infrared spectroscopy reveals that this optimal spacing maximizes the fraction of surface‐bound HCOO* intermediates, stabilized on coordinatively unsaturated Zr(IV) Lewis acid sites on the ZrO 2 support, which are dynamically involved in catalysis. This particle spacing represents a shift in the reaction's kinetic control regime and the apparent activation energy for methanol synthesis. Engineering Cu interparticle spacing to the optimal value results in exceptionally high metal‐specific methanol formation rates under industrially relevant reaction conditions. More broadly, our findings highlight that, beyond metal particle size, interparticle spacing is a key design parameter for catalyst systems featuring functional metal‐oxide interfaces.

Article Details

Volume / Issue Vol. 64, Issue 37
Published September 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

I

Iván López‐Luque

ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain

J

Jannis Hack

School of Engineering Institute of Materials and Process Engineering ZHAW Zurich University of Applied Sciences Technikumstrasse 9 Winterthur 8401 Switzerland

T

Tania Ródenas

ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain

W

Wilson Henao

ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain

B

Bernat Mundet

Institut Català de Nanociència i Nanotecnología (ICN2) Campus UAB Bellaterra (Cerdanyola del Vallès) Barcelona 08193 Spain

P

Prathamesh Patil

Centre for Electrochemistry and Surface Technology TFZ–Wiener Neustadt Viktor‐Kaplan‐Strasse 2 Wr. Neustadt 2700 Austria

C

Christian M. Pichler

C

Carlo Marini

ALBA Synchrotron Light Source

G

Giovanni Agostini

ELETTRA‐Sincrotrone Trieste S.C.p.A Strada Statale 14–km 163 Trieste Basovizza 34149 Italy

D

Daniel M. Meier

Institute of Materials and Process Engineering (IMPE)

G

Gonzalo Prieto

ITQ Instituto de Tecnología Química Universitat Politècnica de València‐Consejo Superior de Investigaciones Científicas (UPV‐CSIC) Av. Los Naranjos s/n Valencia 46022 Spain