Bulk Embedding of Ferroelectric Nanodomains in CuBi2O4 Photocathodes Enables Boosted Photoelectrochemical Hydrogen Generation

Author:

Xu Youxun1,Jian Jie12,Su Guirong3,Liu Wei3,Wang Shiyuan12,Shuang Yazhou12,Li Fan12,Jia Lichao4,Friedrich Dennis5,van de Krol Roel5,Wang Hongqiang12ORCID

Affiliation:

1. State Key Laboratory of Solidification Processing Center for Nano Energy Materials School of Materials Science and Engineering Northwestern Polytechnical University and Shaanxi Joint Laboratory of Graphene Xi'an 710072 P. R. China

2. Chongqing Innovation Center Northwestern Polytechnical University Chongqing 401135 P. R. China

3. Nano and Heterogeneous Materials Center School of Materials Science and Engineering Nanjing University of Science and Technology Nanjing Jiangsu 210094 P. R. China

4. Key Laboratory of Applied Surface and Colloid Chemistry National Ministry of Education Shaanxi Key Laboratory for Advanced Energy Devices Shaanxi Engineering Lab for Advanced Energy Technology School of Materials Science and Engineering Shaanxi Normal University 620 West Chang'an Street Xi'an Shaanxi 710119 P. R. China

5. Institute for Solar Fuels Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Hahn‐Meitner‐Platz 1 14109 Berlin Germany

Abstract

AbstractIt is widely accepted that metal oxide‐based photoelectrodes (MOPs) hold great promise for future solar hydrogen generation but are facing awkward challenge arising from their low intrinsic carrier mobility. The highly polarized nature of the predominantly ionic metal‐oxygen bond always leads to the formation of small polarons that are responsible for the localized trapping of photo‐generated carriers. Present study explores the reduction of carriers transport barrier via bulk embedding of ferroelectric nanodomains (FNDs) in MOPs that results in a new performance benchmark for the CuBi2O4 photocathode. By embedding laser‐generated sub‐10 nm BaTiO3 nanocrystals in the bulk of CuBi2O4 photocathode, numerous FNDs are created that can lead to two times enhancement of the carrier mobility, which is proposed to originate from the overlaying of the internal electric fields and effective electrons transport channel at the heterointerfaces of BaTiO3/CuBi2O4. Such strategy leads to the CuBi2O4 photocathode with the photocurrent density of up to 3.21 mA cm−2 at 0.6 VRHE, as well as a pronounced absorbed photon‐to‐current efficiency up to 80% at 400 nm. The universal feature of present technology is further verified by laser embedding of SrTiO3 FNDs, providing an effective route for addressing the charge transport limitations in MOPs.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

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

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