Low‐Temperature Reverse Water–Gas Shift Enabled by Magnetically Induced Catalysis

J Junhui Hu L Lise Marie Lacroix (Laboratoire De Physique et Chimie des Nano‐Objets Université De Toulouse, LPCNO, INSA, UPS CNRS‐UMR 5215 Toulouse France) J Jacob Johny (Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany) S Sourav Ghosh E Elisabeth Hannah Wolf (Max Planck Institute For Chemical Energy Conversion Germany) J Jeongmin Ji (Max Planck Institute For Chemical Energy Conversion Germany) S Sheng‐Hsiang Lin (Max Planck Institute For Chemical Energy Conversion Germany) M Manisha Durai (Max Planck Institute For Chemical Energy Conversion Mülheim an der Ruhr Germany) A Alin Benice Schöne (Max Planck Institute For Chemical Energy Conversion Germany) W Walid Hetaba (Max Planck Institute for Chemical Energy Conversion, Stiftstraße 34-36, Mülheim an der Ruhr 45470, Germany) H Holger Ruland (Department of Heterogeneous Reactions, Max Planck Institute for Chemical Energy Conversion 2 , Stiftstraße 34–36, 45470 Mülheim an der Ruhr,) W Walter Leitner (Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany) A Alexis Bordet (Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany)

Abstract

ABSTRACT Equilibrium‐limited endothermic reactions play a crucial role in the transition toward a more sustainable chemical industry, but are typically plagued by the need for high operation temperatures (>500°C). Here, we show that the temperature gradients generated by the selective and localized heating of catalyst materials in a colder reactor environment shift the equilibrium of thermodynamically‐limited endothermic reactions and improve their performance. In particular, the reverse water gas shift reaction and magnetic induction are selected as the model reaction and selective catalyst heating method, respectively. Magnetically induced catalysis using standard Cu–Al spinel‐derived catalyst functionalized with carbon‐coated iron nanoparticles enables high CO yield (up to 62%) at mild catalyst and reactor temperatures (estimated at 300°C and determined as 25–123°C, respectively). We demonstrate that the catalyst temperature and not the reactor temperature governs the equilibrium product composition of the rWGS, and that the temperature gradient promotes the in situ removal of water to shift the gas phase thermodynamic equilibrium. These two points synergistically result in a CO yield that would require a reactor temperature of 650°C in a conventionally heated gas phase reaction.

Article Details

Volume / Issue Vol. 65, Issue 16
Published April 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

J

Junhui Hu

L

Lise Marie Lacroix

Laboratoire De Physique et Chimie des Nano‐Objets Université De Toulouse, LPCNO, INSA, UPS CNRS‐UMR 5215 Toulouse France

J

Jacob Johny

Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany

S

Sourav Ghosh

E

Elisabeth Hannah Wolf

Max Planck Institute For Chemical Energy Conversion Germany

J

Jeongmin Ji

Max Planck Institute For Chemical Energy Conversion Germany

S

Sheng‐Hsiang Lin

Max Planck Institute For Chemical Energy Conversion Germany

M

Manisha Durai

Max Planck Institute For Chemical Energy Conversion Mülheim an der Ruhr Germany

A

Alin Benice Schöne

Max Planck Institute For Chemical Energy Conversion Germany

W

Walid Hetaba

Max Planck Institute for Chemical Energy Conversion, Stiftstraße 34-36, Mülheim an der Ruhr 45470, Germany

H

Holger Ruland

Department of Heterogeneous Reactions, Max Planck Institute for Chemical Energy Conversion 2 , Stiftstraße 34–36, 45470 Mülheim an der Ruhr,

W

Walter Leitner

Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany

A

Alexis Bordet

Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany