• 文献标题:   Mechanism insights into direct conversion of syngas into C-2 oxygenates via key intermediate C2O2 over Ni-Supported graphene
  • 文献类型:   Article
  • 作  者:   LIU PF, YANG YH, WANG Q
  • 作者关键词:   cc coupling, co dimerization, c2o2 hydrogenation, nisupported graphene, reaction mechanism, dft calculation
  • 出版物名称:   CARBON
  • ISSN:   0008-6223 EI 1873-3891
  • 通讯作者地址:  
  • 被引频次:   3
  • DOI:   10.1016/j.carbon.2021.01.008 EA JAN 2021
  • 出版年:   2021

▎ 摘  要

A critical step toward the rational design of new catalyst that achieve selective and efficient synthesis of C2+ oxygenates from syngas (CO/H-2) by Fischer-Tropsch synthesis (FTS) is to determine the detailed reaction mechanism. Herein, the mechanism of two gaseous CO monomers coupling into a chemisorbed ethylene dione (O*C*CO) and subsequent hydrogenation of O*C*CO on the chainmail catalyst of nickel-supported graphene surface is reported. The results show that two gaseous CO monomers can be coupled into a two-atom-chemisorbed O*C*CO via a metastable intermediate of O*CCO single-atom-chemisorbed on Ni-supported on graphene with the barrier energy of 0.85 eV and a strong exothermicity of 1.45 eV. The key intermediate of O*C*CO can be stably chemisorbed on the Ni-supported-graphene surface by riveting two coupled C atoms on the ortho-, meta-, or para-position of graphene six-membered ring, forming four-, five-, and six-membered ring with the carbon atoms of graphene, respectively. Then, the potential energy surfaces of chemisorbed O*C*CO hydrogenation indicates that glycol-aldehyde (HOH2C-CHO) would be preferred to form by the kinetically favorable initial C-hydrogenation due to the low rate-limiting barrier of 0.46 eV, while the glyoxal (OHC=CHO) is a considerably competitive product because its rate-limiting barrier is only 0.18 eV higher than that of the glycol-aldehyde. These results suggest that the chainmail catalyst of nickel-supported graphene could be a potential and high-efficient catalyst for synthesis of C-2 oxygenates from syngas, which also provides a fundamental insight into the new reaction mechanism of Fischer-Tropsch synthesis. (C) 2021 Elsevier Ltd. All rights reserved.