Modulating Charge Separation of Oxygen‐Doped Boron Nitride with Isolated Co Atoms for Enhancing CO2‐to‐CO Photoreduction

Author:

Liang Jianli12ORCID,Zhang Huabin3,Song Qianqian4,Liu Zheyang5,Xia Jing6,Yan Binhang7,Meng Xiangmin6,Jiang Zhifeng5ORCID,Lou Xiong Wen (David)1ORCID,Lee Chun‐Sing12ORCID

Affiliation:

1. Department of Chemistry City University of Hong Kong 83 Tat Chee Avenue Kowloon Hong Kong 999077 P. R. China

2. Center of Super‐Diamond and Advanced Films (COSDAF) City University of Hong Kong 83 Tat Chee Avenue Kowloon Hong Kong 999077 P. R. China

3. KAUST Catalysis Center (KCC) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Saudi Arabia

4. College of Physics and Materials Science Tianjin Normal University Tianjin 300387 P. R. China

5. Institute for Energy Research Jiangsu University 301 Xuefu Road Zhenjiang 212013 P. R. China

6. Key Laboratory of Photochemical Conversion and Optoelectronic Materials Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 P. R. China

7. Department of Chemical Engineering Tsinghua University Beijing 100084 P. R. China

Abstract

AbstractTo alleviate the greenhouse effect and address the related energy crisis, solar‐driven reduction of carbon dioxide (CO2) to value‐added products is considered as a sustainable strategy. However, the insufficient separation and rapid recombination of photogenerated charge carriers during photocatalysis greatly limit their reduction efficiency and practical application potential. Here, isolated Cobalt (Co) atoms are successfully decorated into oxygen‐doped boron nitride (BN) via an in situ pyrolysis method, achieving greatly improved catalytic activity and selectivity to the carbon monoxide (CO) product. X‐ray absorption fine spectroscopy demonstrates that the isolated Co atoms are stabilized by the O and N atoms with an unsaturated CoO2N1 configuration. Further experimental investigation and theoretical simulations confirm that the decorated Co atoms not only work as the real active center during the CO2 reduction process, but also perform as the electron pump to promote the electron/hole separation and transfer, resulting in greatly accelerated reaction kinetics and improved activity. In addition, the CoO2N1 coordination geometry is favorable to the conversion from *CO2 to *COOH, which shall be considered as a selectivity‐determining step for the evolution of the CO products. The surface modulation strategy at the atomic level opens a new avenue for regulating the reaction kinetics for photocatalytic CO2 reduction.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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