Mechanism of CO2 Reduction to Methanol with H2 on an Iron(II)-scorpionate Catalyst

被引:3
|
作者
Zhu, Chengxu [1 ,2 ]
D'Agostino, Carmine [2 ,3 ]
de Visser, Sam P. [1 ,2 ]
机构
[1] Univ Manchester, Manchester Inst Biotechnol, 131 Princess St, Manchester M1 7DN, England
[2] Univ Manchester, Dept Chem Engn, Oxford Rd, Manchester M13 9PL, England
[3] Univ Bologna, Dipartimento Ingn Civile Chim Ambientale & Materia, Alma Mater Studiorum, Via Terracini 28, I-40131 Bologna, Italy
关键词
density functional theory; inorganic reaction mechanisms; CO2; reduction; iron; homogeneous catalysis; ENHANCED ELECTROCATALYTIC ACTIVITY; SEQUENTIAL HYDROGENATION; DRUG-METABOLISM; IRON; CONVERSION; HYDROXYLATION; COMPLEXES; ELECTRODES; PATHWAYS; INSIGHTS;
D O I
10.1002/chem.202302832
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
CO2 utilization is an important process in the chemical industry with great environmental power. In this work we show how CO2 and H-2 can be reacted to form methanol on an iron(II) center and highlight the bottlenecks for the reaction and what structural features of the catalyst are essential for efficient turnover. The calculations predict the reactions to proceed through three successive reaction cycles that start with heterolytic cleavage of H-2 followed by sequential hydride and proton transfer processes. The H-2 splitting process is an endergonic process and hence high pressures will be needed to overcome this step and trigger the hydrogenation reaction. Moreover, H-2 cleavage into a hydride and proton requires a metal to bind hydride and a nearby source to bind the proton, such as an amide or pyrazolyl group, which the scorpionate ligand used here facilitates. As such the computations highlight the non-innocence of the ligand scaffold through proton shuttle from H-2 to substrate as an important step in the reaction mechanism.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Novel CO2 electrochemical reduction to methanol for H2 storage
    Kobayashi, T
    Takahashi, H
    ENERGY & FUELS, 2004, 18 (01) : 285 - 286
  • [2] Catalytic reduction of CO2 by H2 for synthesis of CO, methanol and hydrocarbons: challenges and opportunities
    Porosoff, Marc D.
    Yan, Binhang
    Chen, Jingguang G.
    ENERGY & ENVIRONMENTAL SCIENCE, 2016, 9 (01) : 62 - 73
  • [3] In situ IR studies on the mechanism of methanol synthesis from CO/H2 and CO2/H2 over Cu-ZnO-Al2O3 catalyst
    Wang, Xiaojuan
    Zhang, Haipeng
    Li, Wei
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2010, 27 (04) : 1093 - 1098
  • [4] In situ IR studies on the mechanism of methanol synthesis from CO/H2 and CO2/H2 over Cu-ZnO-Al2O3 catalyst
    Xiaojuan Wang
    Haipeng Zhang
    Wei Li
    Korean Journal of Chemical Engineering, 2010, 27 : 1093 - 1098
  • [5] Selectivity control towards CO versus H2 for photo-driven CO2 reduction with a novel Co(II) catalyst
    Gracia, Lisa-Lou
    Henkel, Philip
    Fuhr, Olaf
    Bizzarri, Claudia
    BEILSTEIN JOURNAL OF ORGANIC CHEMISTRY, 2023, 19 : 1766 - 1775
  • [6] A Study on the Order of Calcination and Liquid Reduction over Cu-Based Catalyst for Synthesis of Methanol from CO2/H2
    Xiaosu Dong
    Feng Li
    Ning Zhao
    Yisheng Tan
    Junwei Wang
    Fukui Xiao
    Catalysis Letters, 2017, 147 : 1235 - 1242
  • [7] A Study on the Order of Calcination and Liquid Reduction over Cu-Based Catalyst for Synthesis of Methanol from CO2/H2
    Dong, Xiaosu
    Li, Feng
    Zhao, Ning
    Tan, Yisheng
    Wang, Junwei
    Xiao, Fukui
    CATALYSIS LETTERS, 2017, 147 (05) : 1235 - 1242
  • [8] Towards a methanol economy based on homogeneous catalysis: methanol to H2 and CO2 to methanol
    Alberico, E.
    Nielsen, M.
    CHEMICAL COMMUNICATIONS, 2015, 51 (31) : 6714 - 6725
  • [9] Vapor phase methylation of pyridine with CO−H2 and CO2−H2 over a Ni catalyst
    Shin-ichiro Fujita
    Norihito Hiyoshi
    Nobutsune Takezawa
    Reaction Kinetics and Catalysis Letters, 1999, 67 : 9 - 12
  • [10] Methanol Synthesis on Potassium-Modified Cu(100) from CO + H2 and CO + CO2 + H2
    Mette Maack
    Henriette Friis-Jensen
    Susanne Sckerl
    Jane H. Larsen
    Ib Chorkendorff
    Topics in Catalysis, 2003, 22 : 151 - 160