Unveiling the Synergy of Interfacial Contact and Defects in α‐Fe2O3 for Enhanced Photo‐Electrochemical Water Splitting

Author:

Su Yikun1,Yu Weirui1,Liao Liming1,Xiong Xinbo1,Chen Huanwen1,Hu Lingzhi1,Lei Tongjia1,Zhao Jinlai1,Chen Dong2,Mai Wenjie3ORCID

Affiliation:

1. Shenzhen Key Laboratory of Special Functional Materials & Shenzhen Engineering Laboratory for Advance Technology of Ceramics College of Materials Science and Engineering Shenzhen University Shenzhen 518060 P. R. China

2. Department of Materials Science and Engineering City University of Hong Kong Hong Kong Hong Kong SAR 999077 China

3. Siyuan Laboratory Guangzhou Key Laboratory of Vacuum Coating Technologies and New Energy Materials Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials Department of Physics Jinan University Guangzhou 510632 China

Abstract

AbstractPhoto‐electrochemical (PEC) water splitting is a promising method for converting solar energy into clean energy, but the mechanism of improving PEC efficiency through the interfacial contact and defect strategy remains highly controversial. Herein, reduced graphene oxide (rGO) and oxygen vacancies are introduced into α‐Fe2O3 nanorod (NR) arrays using a simple spin‐coating method and acid treatment. The resultant oxygen vacancy–α‐Fe2O3/rGO‐integrated system exhibits a higher photocurrent, four times than the pristine α‐Fe2O3. It is well evidenced that the electronic interface interaction between α‐Fe2O3 and rGO is boosted with the oxygen vacancies, facilitating electron transfer from α‐Fe2O3 to rGO. Moreover, the oxygen vacancies not only create interband states in α‐Fe2O3 that can trap photogenerated holes and thus facilitate charge separation but significantly also strengthen the adsorption of oxidative intermediates and reduce the energy barrier of rate‐determining step during oxygen evolution reaction (OER). This study demonstrates an rGO–oxygen vacancy synergistic interfacial contact and defect modification approach to design semiconducting photocatalysts for high‐efficiency solar energy capture and conversion. The generated principle is expected to be extendable to another material system.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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