Unique Geometrical and Electronic Properties of TM2B2 Quadruple Active Sites Supported on C2N Monolayer Toward Effective Electrochemical Urea Production

Author:

Ma Zengying1,Luo Yao2,Wu Peng1,Zhong Junwen3,Ling Chongyi4,Yu Yanghong1,Xia Xueqian1,Song Bowen1,Ning Lixin15,Huang Yucheng13ORCID

Affiliation:

1. College of Chemistry and Material Science Key Laboratory of Electrochemical Clean Energy of Anhui Higher Education Institutes Key Laboratory of Functional Molecular Solids Ministry of Education Anhui Normal University Wuhu 241000 China

2. School of Power and Mechanical Engineering The Institute of Technological Sciences Wuhan University Wuhan 430072 China

3. Anhui Key Laboratory of Molecule‐Based Materials Anhui Carbon Neutrality Engineering Center Anhui Normal University Wuhu 241000 China

4. Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics Southeast University Nanjing 211102 China

5. Anhui Province Key Laboratory of Optoelectric Materials Science and Technology Anhui Normal University Wuhu 241000 China

Abstract

AbstractDeveloping high‐performance electrocatalysts for urea production using CO2 and N2 holds great potential to mitigate environmental pollution and energy crisis. In this study, 26 kinds of quadruple TM2B2 ensembles supported on porous C2N monolayer are designed as the potential electrocatalysts, with the expectation to provide sufficient space for the co‐adsorption of CO2 and N2 and fulfill a synergistic effect of transition metal (TM) and boron atoms. Cr2B2@C2N is selected as the promising electrocatalyst with a record‐low limiting potential of −0.37 V (vs RHE) in the neutral environment, by using a three‐step screening strategy, i.e., stability of the catalyst, adsorption pattern of N2, and desorption of urea. With the help of artificial intelligence approaches, simple geometric and electronic descriptors are identified for the selectivity and activity of the electrocatalysts, which correlate strongly with the TM‐B distance and the number of d electrons and electronegativity of TM atoms. The geometric descriptor narrows the scope to the early‐TM‐containing systems while the electronic descriptor produces the Cr‐containing system. Results of this study provide a novel perspective to the electrochemical synthesis of urea that is useful to the rational design of effective electrocatalyst toward urea production.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

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

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