Gradient Cationic Vacancies Enabling Inner‐To‐Outer Tandem Homojunctions: Strong Local Internal Electric Field and Reformed Basic Sites Boosting CO2 Photoreduction

Author:

Wang Yinghui1,Hu Jingcong2,Ge Teng3,Chen Fang1,Lu Yue2,Chen Runhua4,Zhang Hongjun4,Ye Bangjiao4,Wang Shengyao5,Zhang Yihe1,Ma Tianyi6,Huang Hongwei1ORCID

Affiliation:

1. Engineering Research Center of Ministry of Education for Geological Carbon Storage and Low Carbon Utilization of Resources Beijing Key Laboratory of Materials Utilization of Nonmetallic Minerals and Solid Wastes National Laboratory of Mineral Materials School of Materials Science and Technology China University of Geosciences (Beijing) Beijing 100083 China

2. Beijing Key Laboratory of Microstructure and Properties of Solids Faculty of Materials and Manufacturing Beijing University of Technology Beijing 100124 China

3. Engineering Technology‐Research Center of Henan Province for Solar Catalysis College of Chemistry and Pharmaceutical Engineering Nanyang Normal University Nanyang 473061 China

4. State Key Laboratory of Particle Detection and Electronics University of Science and Technology of China Hefei 230026 China

5. College of Science Huazhong Agricultural University Wuhan 430070 China

6. School of Science RMIT University Melbourne VIC 3000 Australia

Abstract

AbstractThe slow charge dynamics and large activation energy of CO2 severely hinder the efficiency of CO2 photoreduction. Defect engineering is a well‐established strategy, while the function of common zero‐dimensional defects is always restricted to promoting surface adsorption. In this work, a gradient layer of tungsten vacancies with a thickness of 3–4 nm is created across Bi2WO6 nanosheets. This gradient layer enables the formation of an inner‐to‐outer tandem homojunction with an internal electric field, which provides a strong driving force for the migration of photoelectrons from the bulk to the surface. Meanwhile, W vacancies change the coordination environment around O and W atoms, leading to an alteration in the basic sites and the mode of CO2 adsorption from weak/strong adsorption to moderate adsorption, which ultimately decreases the formation barrier of the key intermediate *COOH and facilitates the conversion thermodynamics for CO2. Without any cocatalyst and sacrificial reagent, W‐vacant Bi2WO6 shows an outstanding photocatalytic CO2 reduction performance with a CO production rate of 30.62 µmol g−1 h−1, being one of the best catalysts in similar reaction systems. This study reveals that gradient vacancies as a new type of defect will show huge potential in regulating charge dynamics and catalytic reaction thermodynamics.

Funder

National Key Research and Development Program of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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