Theoretical study of CO2 electrochemical reduction on Cu(111) and Sn@Cu (111) surface in presence of water

被引:4
|
作者
Ma, Ruirui [1 ]
Li, Shuai [1 ]
Sun, Shujuan [1 ]
Luo, Yuhong [1 ]
Mao, Yaqi [1 ]
Li, Jingde [1 ]
Zhang, Zisheng [1 ,2 ]
机构
[1] Hebei Univ Technol, Sch Chem Engn & Technol, Tianjin Key Lab Chem Proc Safety, Hebei Prov Key Lab Green Chem Technol & High Effic, Tianjin 300130, Peoples R China
[2] Univ Ottawa, Dept Chem & Biol Engn, Ottawa, ON K1N 6N5, Canada
来源
MOLECULAR CATALYSIS | 2023年 / 546卷
基金
中国国家自然科学基金;
关键词
CO2; reduction; Density functional theory; Water solvent; Reaction kinetic; METHANOL SYNTHESIS; CARBON-DIOXIDE; HYDROGENATION; SELECTIVITY; MECHANISMS; CATALYSTS;
D O I
10.1016/j.mcat.2023.113272
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Carbon dioxide (CO2) electrochemical reduction is an important technique for CO2 utilization. Sn-doped Cubased catalysts usually shows good activity for CO2 reduction reaction. However, the effect of Sn-dopant in the presence of water solvent is rarely studied. This is critical because CO2 electrochemical reduction occurs at catalyst/electrolyte interface. In this work, H-shuttling and water-solvated solvent models are considered, and the mechanism of HCOOH and CH3OH production through CO2 reduction on clean and Sn doped Cu(111) surfaces in presence of H2O is systematically investigated by density functional theory calculations. The results show that, in presence of H2O molecule, the rate-limiting step toward CH3OH production is found to be the reduction of CO2 into COOH on both the Cu(111) and Sn@Cu(111) surfaces. However, the addition of Sn lowers the activation barrier of this rate control step, and thus makes Sn@Cu(111) more conductive to the formation of CH3OH. Also, the calculations also show that Sn doping exhibits no significant effect on the formation of HCOOH. The result provides a deep insight on the Sn doped Cu-based catalyst for CO2 electrochemical reduction reaction.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Cu-Sn Aerogels for Electrochemical CO2 Reduction with High CO Selectivity
    Pan, Yexin
    Wu, Muchen
    Ye, Ziran
    Tang, Haibin
    Hong, Zhanglian
    Zhi, Mingjia
    MOLECULES, 2023, 28 (03):
  • [32] Structures and stabilities of small Co clusters on a Cu(111) surface: A theoretical study
    Huang, R. Z.
    Chen, C.
    Li, C. M.
    Jiang, C. H.
    Zhang, R. J.
    Gao, Y.
    APPLIED SURFACE SCIENCE, 2017, 419 : 45 - 51
  • [33] Interaction of CO, O, and CO2 with Cu cluster supported on Cu(111): a density functional theory study
    Padama, Allan Abraham B.
    Ocon, Joey D.
    Nakanishi, Hiroshi
    Kasai, Hideaki
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2019, 31 (41)
  • [34] Theoretical study on the synthesis of methane by CO2 hydrogenation on Ni3Fe(111) surface
    Kang, Liming
    Chen, Xin
    Ke, Qiang
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2021, 94
  • [35] Role of a Hydroxide Layer on Cu Electrodes in Electrochemical CO2 Reduction
    Iijima, Go
    Inomata, Tomohiko
    Yamaguchi, Hitoshi
    Ito, Miho
    Masuda, Hideki
    ACS CATALYSIS, 2019, 9 (07): : 6305 - 6319
  • [36] Controlled formation of shape structures via electrochemical surface modification of Cu(111)
    Pascual-Llorens, Vicente
    Serra-Ramos, Albert
    Sebastian-Pascual, Paula
    ELECTROCHIMICA ACTA, 2025, 518
  • [37] Theoretical Investigation of the Adsorbate and Potential-Induced Stability of Cu Facets During Electrochemical CO2 and CO Reduction
    Yu, Henry
    Govindarajan, Nitish
    Weitzner, Stephen E.
    Serra-Maia, Rui F.
    Akhade, Sneha A.
    Varley, Joel B.
    CHEMPHYSCHEM, 2024, 25 (10)
  • [38] Electrochemical Reduction of CO2 on Ni- and Pt-Epitaxially Grown Cu(111) Surfaces
    Todoroki, Naoto
    Yokota, Naohiro
    Nakahata, Shoko
    Nakamura, Hiroki
    Wadayama, Toshimasa
    ELECTROCATALYSIS, 2016, 7 (01) : 97 - 103
  • [39] Electrochemical Reduction of CO2 on Ni- and Pt-Epitaxially Grown Cu(111) Surfaces
    Naoto Todoroki
    Naohiro Yokota
    Shoko Nakahata
    Hiroki Nakamura
    Toshimasa Wadayama
    Electrocatalysis, 2016, 7 : 97 - 103
  • [40] Decomposition mechanism of formic acid on Cu (111) surface: A theoretical study
    Jiang, Zhao
    Qin, Pei
    Fang, Tao
    APPLIED SURFACE SCIENCE, 2017, 396 : 857 - 864