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The acceleration of methanol synthesis and C2 oxygenates formation on copper grain boundary from syngas.

Authors :
Wang, Jingbo
Sun, Qiang
Chan, Siewhwa
Su, Haibin
Source :
Applied Catalysis A: General. Jan2016, Vol. 509, p97-104. 8p.
Publication Year :
2016

Abstract

Density functional theory is employed to investigate the Fischer–Tropsch mechanism on copper ∑5(310) tilt grain boundary together with Cu(111) surface. For the methanol formation, Cu∑5(310) can effectively reduce each energy barrier through the preferred CH 3 O intermediate route as compared with Cu(111). Furthermore, Cu∑5(310) provides a synergetic effect to modulate the energy landscape in the methanol synthesis, where the pathway associated with CH 2 OH (CH 2 O ↔ CH 2 OH ↔ CH 3 OH) presents the clear kinetic advantage than the CH 3 O route. Simultaneously, the kinetically assisted intermediate CH 2 OH enable the CH 2 production both thermodynamically and kinetically on Cu∑5(310). The formation of C2 oxygenates from CH 2 provides a critical precursor to higher alcohol synthesis. The higher activity of grain boundary is attributed to the presence of low-coordinated sites with flexible local configuration. Consequently, the adsorption strength of small species is enhanced to provide a thermodynamic driving force for C O bond scission. The adaptive character of ∑5(310) grain boundary facilitates the stabilization of the transition state, therefore lowering the activation barrier. Present work unravels the microscopic origin of the higher catalytic capacity of copper ∑5(310) grain boundary which can be helpful to guide the development of novel Cu-based catalysts for higher alcohol formation from syngas. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0926860X
Volume :
509
Database :
Academic Search Index
Journal :
Applied Catalysis A: General
Publication Type :
Academic Journal
Accession number :
111495557
Full Text :
https://doi.org/10.1016/j.apcata.2015.10.036