CO <sub>2</sub> as a Redox Shuttle Enables Photocatalytic Dehydrogenative Decarbonylation of Biomass‐Derived Alcohols to Light Alkanes

J Jun Hu W Wenhao Su C Chaoqin Zeng (State Key Laboratory of Low Carbon Catalysis and Carbon Dioxide Utilization Lanzhou Institute of Chemical Physics Chinese Academy of Sciences Lanzhou Gansu China) B Bruno Vinicius Manzolli Rodrigues (Department of Inorganic Chemistry University of Wuppertal Wuppertal Germany) N Nils Rockstroh S Susanna Monti (CNR-ICCOM, Institute of Chemistry of Organometallic Compounds) G Giovanni Barcaro (CNR-IPCF, Institute of Chemical and Physical Processes) P Piotr Kuśtrowski (Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, 30-387 Krakow, Poland) A Aleksander Jaworski (Department of Chemistry) J Jabor Rabeah (Magnetic Resonance and X-ray Methods) A Adam Slabon (Chair of Inorganic Chemistry) S Shoubhik Das (Department of Chemistry, University of Bayreuth, Universitätsstraße 30, 95447 Bayreuth, Germany)

Abstract

ABSTRACT The use of CO 2 as a redox shuttle offers an emerging strategy to regulate electron and hydrogen transfer in catalytic transformations, yet its potential remains largely unexplored. In particular, dehydrogenative decarbonylation of alcohols possesses a long‐standing challenge, as it requires the controlled coupling of oxidative alcohol activation with reductive C─C bond cleavage, two intrinsically competing processes that are difficult to balance within a single catalytic system. Considering these, we demonstrate that CO 2 can resolve this mismatch by functioning as a dynamic redox shuttle in a heterogeneous photocatalytic platform. Under visible‐light irradiation, the photocatalyst promotes sequential dehydrogenation of primary alcohols to aldehydes, followed by C─C bond scission and selective formation of alkanes. Mechanistic studies, including isotope labeling, radical trapping, atmosphere‐dependent reactivity, and advanced quantum mechanical calculations reveal that CO 2 is not incorporated into the products but instead transiently interacts with reduced iron sites to facilitate catalyst turnover, suppress unproductive H 2 evolution, and direct hydrogen equivalents toward C─H bond formation. This redox‐shuttling function enables the integration of oxidative and reductive steps within a single photocatalytic cycle, thus opening new opportunities for steering complex redox transformations in photocatalysis.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 24, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

J

Jun Hu

W

Wenhao Su

C

Chaoqin Zeng

State Key Laboratory of Low Carbon Catalysis and Carbon Dioxide Utilization Lanzhou Institute of Chemical Physics Chinese Academy of Sciences Lanzhou Gansu China

B

Bruno Vinicius Manzolli Rodrigues

Department of Inorganic Chemistry University of Wuppertal Wuppertal Germany

N

Nils Rockstroh

S

Susanna Monti

CNR-ICCOM, Institute of Chemistry of Organometallic Compounds

G

Giovanni Barcaro

CNR-IPCF, Institute of Chemical and Physical Processes

P

Piotr Kuśtrowski

Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, 30-387 Krakow, Poland

A

Aleksander Jaworski

Department of Chemistry

J

Jabor Rabeah

Magnetic Resonance and X-ray Methods

A

Adam Slabon

Chair of Inorganic Chemistry

S

Shoubhik Das

Department of Chemistry, University of Bayreuth, Universitätsstraße 30, 95447 Bayreuth, Germany