Role of Water in Low‐Temperature CO <sub>2</sub> Reduction at Defect‐Rich TiO <sub>2</sub>

J Justin Klimek (Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany) F Filip Hallböök (Department of Process and Life Science Engineering Lund University Lund Sweden) N Niko Kruse (Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany) F Fangliang Li S Sara Blomberg (Department of Process and Life Science Engineering Lund University Lund Sweden) K Katharina Al‐Shamery (Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany) L Lars Mohrhusen (Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany)

Abstract

ABSTRACT Point defects in titanium dioxide (TiO 2 ) are the most relevant reaction sites for the activation of oxygenates. Herein, we probe the activation of CO 2 on highly defective TiO 2 in situ using synchrotron‐based near‐ambient pressure X‐ray photoelectron spectroscopy between 0.1 mbar and 2.6 mbar from room temperature to 700 K. Multiple carbon surface intermediates form upon CO 2 activation. The presence of key intermediates acts as a fingerprint for the population of different reaction pathways, that is, promotion or suppression of selected reaction steps in various gas environments. In the absence of potent H/OH donors, the formyl, glyoxal, formaldehyde and carbene pathways are populated simultaneously. However, aqueous atmospheres boost intermediate formation and promote oxygen‐rich organic molecules, suppressing coke formation along the carbene pathway. Thermal loss of hydroxyls above ≈550 K triggers the population of such oxygen‐lean routes, along with a decrease in carbon intermediates, converging to the chemistry under water‐free conditions. Our results highlight reduced titania as a noble metal‐free CO 2 activation catalyst and demonstrate how water can be used to favor the desired product distribution. The findings herein will guide the development of sustainable catalysts from heavily reduced oxides, for example, black titania, for platform chemicals based on CO 2 as a building block.

Article Details

Volume / Issue Vol. 65, Issue 28
Published July 06, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

J

Justin Klimek

Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany

F

Filip Hallböök

Department of Process and Life Science Engineering Lund University Lund Sweden

N

Niko Kruse

Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany

F

Fangliang Li

S

Sara Blomberg

Department of Process and Life Science Engineering Lund University Lund Sweden

K

Katharina Al‐Shamery

Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany

L

Lars Mohrhusen

Institute of Chemistry Carl von Ossietzky University of Oldenburg Oldenburg Germany