Gradient Valence Engineering Synchronizes Charge‐Carrier and Catalytic Dynamics for Efficient Solar Water Oxidation

Y Yulei Xin (Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China) K Kai Huang X Xiao Zhang X Xianqiang Xiong (Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China) C Chenglin Wu S Sónia A. C. Carabineiro (LAQV‐REQUIMTE Department of Chemistry NOVA School of Science and Technology Universidade NOVA de Lisboa Caparica Portugal) X Xiaogang Yang (School of Marine Sciences, Sun Yat-sen University) Z Zhangxin Chen (Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China) H Huayue Zhu (Institute of Environmental Engineering Technology Taizhou University Taizhou China) B Bin Liu

Abstract

ABSTRACT The efficiency of photoelectrochemical water splitting is constrained by the kinetic mismatch between ultrafast charge separation and slow catalytic turnover. Inspired by the spatiotemporal precision of photosystem II, we designed a redox‐engineered BiVO 4 /Fe‐HOTP (BVO/R‐Fe‐HOTP) photoanode, with ‘R‐’ denoting the sample subjected to sequential NaBH 4 reduction and O 2 oxidation treatment (where HOTP refers to the 2,3,6,7,10,11‐hexaoxidotriphenylene multidentate ligand). This architecture establishes a programmable valence gradient that bridges charge separation and catalytic water oxidation. Through controlled redox engineering, we grew an amorphous Fe‐HOTP layer on BVO, establishing a continuous transition from electron‐rich Fe δ+ ( δ < 2), at the interface, to highly oxidized Fe 3+ , at the outer surface. Under light illumination, surface Fe 3+ is further oxidized to Fe 4+ , generating active redox sites that enable a turnover frequency (TOF) of 82 s −1 . This architecture reduces interfacial band offsets for ultrafast hole injection and establishes a built‐in potential gradient that extends carrier lifetime to 0.03 s. Thus, the BVO/R‐Fe‐HOTP photoanode delivers a photocurrent density of 6.1 mA cm −2 at 1.23 V RHE and, when coupled with a Si solar cell, achieves unbiased solar water splitting with a solar‐to‐hydrogen efficiency of 4.58%. These results establish gradient valence engineering as an effective strategy for synchronizing charge‐carrier and catalytic dynamics.

Article Details

Volume / Issue Vol. 65, Issue 23
Published June 01, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Y

Yulei Xin

Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China

K

Kai Huang

X

Xiao Zhang

X

Xianqiang Xiong

Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China

C

Chenglin Wu

S

Sónia A. C. Carabineiro

LAQV‐REQUIMTE Department of Chemistry NOVA School of Science and Technology Universidade NOVA de Lisboa Caparica Portugal

X

Xiaogang Yang

School of Marine Sciences, Sun Yat-sen University

Z

Zhangxin Chen

Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China

H

Huayue Zhu

Institute of Environmental Engineering Technology Taizhou University Taizhou China

B

Bin Liu