Phthalocyanine Grafting Strategy Induces Strong Intrinsic Electric Fields and Molecule‐Edge Carrier Transport Pathways for Photoelectrochemical Water Splitting

W Wei Luo H Hui Xiao S Shengya Zhang (Key Laboratory of Bioelectrochemistry & Environmental Analysis of Gansu Province College of Chemistry & Chemical Engineering Northwest Normal University Lanzhou 730070 P.R. China) Z Ze Wang R Rongfang Zhang J Jianbin Xue Y Yanjun Feng B Bingzhang Lu (School of Chemical Engineering and Technology Xi'an Jiaotong University Shanxi China) P Peiyao Du (Key Laboratory of Bioelectrochemistry & Environmental Analysis of Gansu Province College of Chemistry & Chemical Engineering Northwest Normal University Lanzhou 730070 P.R. China) X Xiaoquan Lu

Abstract

Abstract Limited charge separation, slow charge mobility, and high electron‐hole recombination rates remain critical challenges impeding the efficiency of photoelectrochemical (PEC) water splitting. More regrettably, the charge transfer pathways within bulk charge transport are not yet fully understood, and the development of effective strategies to design these pathways remains a significant challenge. Herein, by optimizing the anchoring sites of small molecular ligands, we developed a molecularly functionalized layer, 4‐ethyl‐carbazole copper phthalocyanine (4EtCz‐Pc), which is characterized by a strong dipole moment, a large internal electric field, and surprisingly positive electrostatic potential at the edge. When integrated in conjunction with the oxygen evolution cocatalyst (OEC) and the semiconductor photoanode BiVO 4 (BVO), it forms a Co(OH)₂/4EtCz‐Pc/BiVO 4 composite photoanode system. This innovative photoanode demonstrates an exceptional performance with continuous output for a duration of 15 h. Additionally, a variety of advanced characterization methods, especially scanning photoelectrochemical microscopy (SPECM) analyses, confirmed that 4EtCz‐Pc significantly reduces the energy barrier for hole injection from the anode to the active layer during PEC catalysis. This study proposes an effective strategy to optimize the ligands grafted onto phthalocyanine, generating a strong internal electric field that facilitates the formation of new charge transport pathways within the photoanode.

Article Details

Volume / Issue Vol. 64, Issue 25
Published June 17, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

W

Wei Luo

H

Hui Xiao

S

Shengya Zhang

Key Laboratory of Bioelectrochemistry & Environmental Analysis of Gansu Province College of Chemistry & Chemical Engineering Northwest Normal University Lanzhou 730070 P.R. China

Z

Ze Wang

R

Rongfang Zhang

J

Jianbin Xue

Y

Yanjun Feng

B

Bingzhang Lu

School of Chemical Engineering and Technology Xi'an Jiaotong University Shanxi China

P

Peiyao Du

Key Laboratory of Bioelectrochemistry & Environmental Analysis of Gansu Province College of Chemistry & Chemical Engineering Northwest Normal University Lanzhou 730070 P.R. China

X

Xiaoquan Lu