4.6 Article

High-Throughput Screening of Nitrogen-Coordinated Bimetal Catalysts for Multielectron Reduction of CO2 to CH4 with High Selectivity and Low Limiting Potential

期刊

JOURNAL OF PHYSICAL CHEMISTRY C
卷 125, 期 13, 页码 7155-7165

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcc.0c10802

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资金

  1. Science and Technology Development Fund, Macau SAR [0191/2017/A3, 0041/2019/A1, 0046/2019/AFJ, 0021/2019/AIR]
  2. University of Macau [MYRG2017-00216-FST, MYRG2018-00192-IAPME]
  3. UEA
  4. Science and Technology Program of Guangzhou [2019050001]
  5. National Key Research and Development Program of China [2019YFE0198000]
  6. Pearl River Talent Program [2019QN01L951]

向作者/读者索取更多资源

Efficient catalysts for electrochemical CO2 reduction reactions face challenges in activity and selectivity. By studying dual-metal atom catalysts in N-doped graphene materials, researchers identified N6V4-AgCr as a promising candidate for deep CO2 reduction to methane with low overpotential. The different spin polarizations caused by frustrated Lewis pairs between metals and para-N contribute to the catalytic performance of each DMAC.
Significant challenges remain for developing efficient catalysts in an electrochemical multielectron CO2 reduction reaction (CO2RR), which usually suffers from poor activity and selectivity. Motivated by the recent experimental progress in fabricating dual-metal atom catalysts (DMACs) in N-doped graphene materials (graphene-N6V4; N: nitrogen and V: vacancy), we sampled eight types of homonuclear (N6V4-M-2, M = Cr, Mn, Fe, Co, Ni, Cu, Pd, and Ag) catalysts and 28 types of heteronuclear (N6V4-M1M2) catalysts to study CO2RR activity via first-principles high-throughput screening. Using stability, activity, and selectivity as indicators along with the broken conventional scaling relationship, N6V4-AgCr was selected as a promising candidate for deep CO2 reduction to methane with a low overpotential of 0.55 V after two screening rounds. Further analysis showed that a frustrated Lewis pair, formed between metal and the para-N, owing to the difference in the electronic arrangement of the d orbitals of various transition metals, caused a difference in the spin polarization of the systems and affected the catalytic performance of each DMAC. Our work not only provides a solid strategy for screening potential catalysts but also demonstrates that their CO2 reduction activities originate from the various atomic and electronic structures of DMACs.

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