Stabilizing Frustrated Phase Transitions in Selective Oxidation Reactions

L Luis Sandoval‐Diaz (Fritz‐Haber‐Institute of the Max‐Planck‐Society 14195 Berlin Germany) T Thomas Götsch (Department of Inorganic Chemistry Fritz Haber Institute of the Max Planck Society 14195 Berlin Germany) D Daniel Cruz M Maurits Vuijk (Fritz‐Haber‐Institute of the Max‐Planck‐Society 14195 Berlin Germany) J Juan M. Lombardi (Fritz‐Haber‐Institute of the Max‐Planck‐Society 14195 Berlin Germany) M Markus Pietsch (Department of Chemistry and Catalysis Research Center, TUM School of Natural Sciences Technical University of Munich 85748 Garching Germany) K Kassiogé Dembélé A Adnan Hammud K Karsten Reuter (Theory Department, Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, 14195 Berlin, Germany) C Christoph Scheurer (Fritz-Haber Institute of the Max Planck Society 1 , Berlin (DE),) A Axel Knop‐Gericke (Department of Inorganic Chemistry Fritz Haber Institute of the Max Planck Society 14195 Berlin Germany) T Thomas Lunkenbein (Fritz-Haber-Institut der Max-Planck-Gesellschaft)

Abstract

Abstract Frustrated phase transitions represent the ideal working state of a heterogeneous catalyst. These states exist within a narrow parameter window, making them difficult to stabilize. Here, it is shown for the selective oxidation of 2‐propanol to acetone over Co 3 O 4 spinels that the addition of water extends the stability regime of the relevant frustrated phase transition. This conclusion is based on results obtained from multi‐modal experiments, including operando scanning electron microscopy (OSEM), near ambient pressure X‐ray photoelectron spectroscopy (NAP‐XPS), transmission electron microscopy (TEM), and computer vision analysis. It is found that the most selective state for acetone formation coincides with a dynamic spinel structure that fluctuates through reversible redox processes. At elevated temperatures, this metastable state undergoes a complete phase transition into the rock‐salt CoO phase characterized by low acetone selectivity. This process is found to be mediated by the generation of mobile vacancies. The addition of water vapor mitigates vacancy mobility and stabilizes the selective, but thermodynamically frustrated, state. As such, the study conceptualizes a strategy to extend the lifetime of a catalyst during reaction by the adequate addition of a co‐reactant.

Article Details

Volume / Issue Vol. 38, Issue 8
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

L

Luis Sandoval‐Diaz

Fritz‐Haber‐Institute of the Max‐Planck‐Society 14195 Berlin Germany

T

Thomas Götsch

Department of Inorganic Chemistry Fritz Haber Institute of the Max Planck Society 14195 Berlin Germany

D

Daniel Cruz

M

Maurits Vuijk

Fritz‐Haber‐Institute of the Max‐Planck‐Society 14195 Berlin Germany

J

Juan M. Lombardi

Fritz‐Haber‐Institute of the Max‐Planck‐Society 14195 Berlin Germany

M

Markus Pietsch

Department of Chemistry and Catalysis Research Center, TUM School of Natural Sciences Technical University of Munich 85748 Garching Germany

K

Kassiogé Dembélé

A

Adnan Hammud

K

Karsten Reuter

Theory Department, Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, 14195 Berlin, Germany

C

Christoph Scheurer

Fritz-Haber Institute of the Max Planck Society 1 , Berlin (DE),

A

Axel Knop‐Gericke

Department of Inorganic Chemistry Fritz Haber Institute of the Max Planck Society 14195 Berlin Germany

T

Thomas Lunkenbein

Fritz-Haber-Institut der Max-Planck-Gesellschaft