4.7 Article

Theoretical insight on why N-vacancy promotes the selective CO2 reduction to ethanol on NiMn doped graphitic carbon nitride sheets

期刊

APPLIED SURFACE SCIENCE
卷 595, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apsusc.2022.153527

关键词

Graphitic carbon nitride; Electronic structure; C-C coupling; CO2 reduction; C-2 preduct

资金

  1. National Research Council of Thailand [N41A640101]
  2. National Nanotechnology Center
  3. Ministry of Science and Technology, Taiwan [MOST 109-2639-M-009-001-ASP, MOST 110-2113-M-001-051]
  4. Academia Sinica [CDA-106-M05]

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In this study, the electronic structures of NiMn doped on g-C3N4 and N-vacancy g-C3N4 were analyzed using ICOHP analysis. The results revealed that NiMn@V-g-C3N4 can selectively produce ethanol at low limiting potential due to its stable oxidation state and electron donation from NiMn in the N-vacancy.
To develop promising dual atom catalysts (DACs) for enhancing valuable C2+ products in CO2 electroreduction (CO2RR), we need a molecular level understanding of the interaction between reaction intermediates, metal atoms, and substrates. NiMn on graphitic carbon nitride (g-C3N4) was experimentally reported to be an efficient CO2RR catalyst. Here, we studied the origin of its activity. We used integrated crystal orbital Hamiltonian population (ICOHP) analysis along the reaction coordinate of the carbon-carbon (C-C) coupling reaction to understand how the electronic structures of NiMn doped on pristine (NiMn@g-C3N4) and N-vacancy graphitic carbon nitride (NiMn@V-g-C3N4) affect the reaction. NiMn@V-g-C3N4 selectively produces ethanol at low limiting potential -0.55 V and a low kinetic barrier (0.78 eV) for *CO+*CHO ->*COCHO. At this step, electron donation from the NiMn in the N-vacancy to the adsorbate is essential. Tricoordinated Ni atom at the vacancy site has a stable oxidation state 0 with a fully filled 3d(10) configuration, while Mn atom takes +2 oxidation state with a half-filled 3d(5) configuration. ICOHP shows that these electronic configurations result in a moderate binding strength of key intermediates near the Ni while facilitating the flexible change in Mn-C to Mn-O binding for producing *COCHO, thus promoting the formation of ethanol.

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