Photocatalytic Partial Water Dissociation by Protonated Carbon Nitride for Hydrogenation Reactions

Q Qing Xu N Nengjun Cai (Soochow Institute for Energy and Materials InnovationS (SIEMIS)) K Kristina Maliutina (School of Chemistry Cardiff University Cardiff CF103AT UK) C Caixia Hu (SynCat@Beijing Synfuels China Technology Co. Ltd Beijing 101407 China) D Dongsheng Zhang (Soochow Institute for Energy and Materials InnovationS (SIEMIS)) Y Yu Huang Y Yuanqiang Mai (Soochow Institute for Energy and Materials InnovationS (SIEMIS)) F Federico Rosei (Department of Chemical and Pharmaceutical Sciences Trieste University Trieste 34127 Italy) Y Yongwang Li (SynCat@Beijing, Synfuels China Technology Co. Ltd., Leyuan South Street II, No.1, Beijing 101407, China) F Flemming Besenbacher (The Interdisciplinary Nanoscience Center (iNANO)) E Emma Richards (Cardiff Catalysis Institute School of Chemistry Cardiff University Maindy Road Cardiff CF24 4HQ UK) T Tingbin Lim (Joint School of National University of Singapore and Tianjin University International Campus of Tianjin University Fuzhou 350207 China) R Ren Su (Soochow Institute for Energy and Materials InnovationS (SIEMIS))

Abstract

Abstract Catalytic hydrogenation using pressurized hydrogen at elevated temperature is of utmost importance in refinery and fine chemical industries, but heavily relies on the hydrocarbon reforming industry. Photocatalytic water dissociation provides a sustainable solution for hydrogenation; however, the strong O─H bond and instant recombination of generated hydrogen atoms and hydroxyl radicals need to be solved. Here, we demonstrate efficient hydrogenation of unsaturated aromatics using water by a protonated graphitic carbon nitride photocatalyst with dioxane as a hydroxyl radical trap under mild conditions. The dissociation energy of the H─O bond is reduced from 5.15 to only 1.48 eV, enabling the formation of H atoms and surface adsorbed hydroxyl radicals ( • OH ads ) under visible light. The • OH ads reacts with dioxane, yielding value‐added dioxane‐2‐ol and prolonging the lifetime of hydrogen atoms for hydrogenation. A high quantum efficiency of ∼6% can be realized under visible light irradiation for the selective hydrogenation of aromatic bromides and aldehydes with high conversion. This approach is scalable in a flow system, revealing financial and environmental potential for hydrogenation and deuteration at a practical level.

Article Details

Volume / Issue Vol. 64, Issue 49
Published December 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

Q

Qing Xu

N

Nengjun Cai

Soochow Institute for Energy and Materials InnovationS (SIEMIS)

K

Kristina Maliutina

School of Chemistry Cardiff University Cardiff CF103AT UK

C

Caixia Hu

SynCat@Beijing Synfuels China Technology Co. Ltd Beijing 101407 China

D

Dongsheng Zhang

Soochow Institute for Energy and Materials InnovationS (SIEMIS)

Y

Yu Huang

Y

Yuanqiang Mai

Soochow Institute for Energy and Materials InnovationS (SIEMIS)

F

Federico Rosei

Department of Chemical and Pharmaceutical Sciences Trieste University Trieste 34127 Italy

Y

Yongwang Li

SynCat@Beijing, Synfuels China Technology Co. Ltd., Leyuan South Street II, No.1, Beijing 101407, China

F

Flemming Besenbacher

The Interdisciplinary Nanoscience Center (iNANO)

E

Emma Richards

Cardiff Catalysis Institute School of Chemistry Cardiff University Maindy Road Cardiff CF24 4HQ UK

T

Tingbin Lim

Joint School of National University of Singapore and Tianjin University International Campus of Tianjin University Fuzhou 350207 China

R

Ren Su

Soochow Institute for Energy and Materials InnovationS (SIEMIS)