Photocatalytic Overall Water Splitting at the Integrated Rh–MoRhO <i> <sub>x</sub> </i> Cluster Heterostructure on InGaN/GaN Nanowires

B Bingxing Zhang (Department of Electrical Engineering and Computer Science, University of Michigan, 1301 Beal Avenue, Ann Arbor, Michigan 48109, United States) Z Zhiheng Zhao Y Yuyang Pan (Department of Electrical Engineering and Computer Science, University of Michigan, 1301 Beal Avenue, Ann Arbor, Michigan 48109, United States) Y Yifan Shen (Department of Electrical Engineering and Computer Science, University of Michigan) Z Zhengwei Ye (Department of Electrical Engineering and Computer Science, University of Michigan, 1301 Beal Avenue, Ann Arbor, Michigan 48109, United States) L Li Wang (The Affiliated Cancer Hospital of Zhengzhou University and Henan Cancer Hospital Zhengzhou China) I Ishtiaque Ahmed Navid K Kai Sun F Frank E. Osterloh (Department of Chemistry) T Theodore B. Norris (Department of Electrical Engineering and Computer Science, University of Michigan) P Peng Chen Z Zetian Mi

Abstract

Abstract The quest for efficient solar‐driven water splitting, a promising avenue for clean fuel production, faces challenges due to limited solar energy conversion efficiency. Traditional approaches study the overall water splitting as two spatially separate half reactions on two unrelated sites, hindering full utilization of photogenerated charge and water molecules. To overcome these limitations, an integrated cluster heterostructure catalyst on InGaN/GaN semiconductor nanowires is proposed for the effective utilization of photogenerated charge carriers and water molecules on the same redox localization. By establishing the fast charge extraction kinetics based on InGaN/GaN nanowires, the integration of Rh and MoRhO x clusters on the nanowire surface enables simultaneous and fast hydrogen/oxygen evolution reactions at the cluster heterostructure. Furthermore, the integrated strategy can enhance the charge redistribution across the heterostructure between the two clusters, further optimizing adsorption of reaction intermediates on each cluster for boosted photocatalytic water splitting activity. Consequently, the integrated heterostructure triggers a 40‐fold increased hydrogen production efficiency in an artificial leaf system. This study provides valuable insights for the rational design of advanced heterostructured photocatalysts for water splitting and beyond.

Article Details

Volume / Issue Vol. 65, Issue 2
Published January 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

B

Bingxing Zhang

Department of Electrical Engineering and Computer Science, University of Michigan, 1301 Beal Avenue, Ann Arbor, Michigan 48109, United States

Z

Zhiheng Zhao

Y

Yuyang Pan

Department of Electrical Engineering and Computer Science, University of Michigan, 1301 Beal Avenue, Ann Arbor, Michigan 48109, United States

Y

Yifan Shen

Department of Electrical Engineering and Computer Science, University of Michigan

Z

Zhengwei Ye

Department of Electrical Engineering and Computer Science, University of Michigan, 1301 Beal Avenue, Ann Arbor, Michigan 48109, United States

L

Li Wang

The Affiliated Cancer Hospital of Zhengzhou University and Henan Cancer Hospital Zhengzhou China

I

Ishtiaque Ahmed Navid

K

Kai Sun

F

Frank E. Osterloh

Department of Chemistry

T

Theodore B. Norris

Department of Electrical Engineering and Computer Science, University of Michigan

P

Peng Chen

Z

Zetian Mi