Synergistic Light‐Ultrasound‐Driven Hydrogen Production by Hydrogen Iodide Decomposition Over Dual‐Molecular Ferroelectric Heterostructure

Z Zi Ning Zhou (Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China) Q Qing Dian Chong (Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China) Y Ya Wen Yang (Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China) Z Zong Wei Hu (Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China) W Wei Ren (College of Energy Materials and Chemistry) S Sheng Sen Zhang (Key Laboratory for Biobased Materials and Energy of Ministry of Education, College of Materials and Energy South China Agricultural University Guangzhou 510643 P.R. China) Q Qiong Ye

Abstract

Abstract Emerging catalytic systems for hydrogen production via solar and mechanical energy conversion often face critical challenges, including band mismatch, interfacial charge recombination, and insufficient charge migration driving forces. To address core issues of low carrier separation efficiency and poor multi‐field coupling in molecular ferroelectrics, this study proposes a molecular engineering strategy of dual molecular ferroelectric heterojunctions. We report a facile one‐pot solution synthesis of a molecular ferroelectric heterojunction composed of 4,4‐difluoropiperidinium lead iodide and 4,4‐difluorocyclohexylamine lead iodide ((4,4‐DFPD) 2 PbI 4 /(4,4‐DFCHA) 2 PbI 4 ), tailored for hydrogen iodide (HI) decomposition under simultaneous light ‐ultrasonic activation. Under dual‐field excitation, the heterojunction achieves a remarkable hydrogen evolution rate of 5.26 mmol g −1  h −1 , outperforming its individual constituents ((4,4‐DFPD) 2 PbI 4 and (4,4‐DFCHA) 2 PbI 4 ) by factors of 4.5 and 2.4, respectively. Kelvin probe force microscopy (KPFM) confirms efficient charge separation at the heterointerface, facilitated by energy‐level alignment and polarization coupling. Both experimental and theoretical investigations attribute the enhanced performance to suppressed charge recombination and the synergistic action of ferroelectric and piezoelectric fields, jointly promoting directional charge migration. This work not only introduces a viable molecular ferroelectric strategy for designing high‐efficiency piezo‐photocatalytic systems but underscores the critical role of interfacial charge dynamics in catalytic optimization, offering theoretical insights and practical guidelines for next‐generation solar‐driven catalysts.

Article Details

Volume / Issue Vol. 64, Issue 38
Published September 15, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

Z

Zi Ning Zhou

Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China

Q

Qing Dian Chong

Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China

Y

Ya Wen Yang

Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China

Z

Zong Wei Hu

Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 P.R. China

W

Wei Ren

College of Energy Materials and Chemistry

S

Sheng Sen Zhang

Key Laboratory for Biobased Materials and Energy of Ministry of Education, College of Materials and Energy South China Agricultural University Guangzhou 510643 P.R. China

Q

Qiong Ye