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Graphdiyne-supported single-cluster electrocatalysts for highly efficient carbon dioxide reduction reaction.
Ge, Pingji; Zhai, Xingwu; Liu, Xiaoyue; Liu, Yinglun; Yang, Xiaodong; Yan, Hongxia; Ge, Guixian; Yang, Jueming; Liu, Yunhu.
Afiliação
  • Ge P; Key Laboratory of Ecophysics and Department of Physics, College of Science, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Zhai X; Xinjiang Production and Construction Corps Key Laboratory of Oasis Town and Mountain-basin System Ecology, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Liu X; Key Laboratory of Ecophysics and Department of Physics, College of Science, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Liu Y; Xinjiang Production and Construction Corps Key Laboratory of Oasis Town and Mountain-basin System Ecology, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Yang X; Key Laboratory of Ecophysics and Department of Physics, College of Science, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Yan H; Xinjiang Production and Construction Corps Key Laboratory of Oasis Town and Mountain-basin System Ecology, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Ge G; Key Laboratory of Ecophysics and Department of Physics, College of Science, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Yang J; Xinjiang Production and Construction Corps Key Laboratory of Oasis Town and Mountain-basin System Ecology, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
  • Liu Y; Key Laboratory of Ecophysics and Department of Physics, College of Science, Shihezi University North fourth Road, Shihezi City, P.R. China. geguixian@126.com.
Nanoscale ; 14(4): 1211-1218, 2022 Jan 27.
Article em En | MEDLINE | ID: mdl-34989742
ABSTRACT
The electrochemical CO2 reduction reaction (CO2RR) has become a promising technology to resolve globally accelerating CO2 emissions and produce chemical fuels. In this work, the electrocatalytic performance of transition metal (TM = Cu, Cr, Mn, Co, Ni, Mo, Pt, Rh, Ru and V) triatomic clusters embedded in a graphdiyne (GDY) monolayer (TM3@GDY) for CO2RR is investigated by density functional theory (DFT) calculations. The results indicate that Cr3@GDY possesses the best catalytic performance with a remarkably low rate-limiting step of 0.39 eV toward the CO2 product, and it can also effectively suppress the hydrogen evolution reaction (HER) during the entire CO2RR process. Studies on the rate-limiting steps (CHO* + H+ + e- → CHOH) of Crn@GDY (n = 1-4) structures demonstrate that the high catalytic performance is attributed to the strong synergistic reaction of three Cr atoms interacting with the C atom for the Cr3@GDY structure. The strong synergistic reaction gives rise to the weakest interaction between O-Cr atoms, which leads to the strongest interaction between O-H atoms and makes the hydrogenation process easier for the Cr3@GDY structure. Furthermore, ab initio molecular dynamics simulations (AIMD) at 500 K reveal the high thermodynamic stability of the Cr3@GDY structure. These studies may provide a new approach for designing highly efficient electrocatalysts for the CO2RR under ambient conditions.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article