Critical Hydrogen Coverage Effect on the Hydrogenation of Ethylene Catalyzed by δ-MoC(001): An Ab Initio Thermodynamic and Kinetic Study

被引:27
作者
Jimenez-Orozco, Carlos [1 ]
Florez, Elizabeth [1 ]
Vines, Francesc [2 ,3 ]
Rodriguez, Jose A. [4 ]
Illas, Francesc [2 ,3 ]
机构
[1] Univ Medellin, Fac Ciencias Basicas, Grp Mat Impacto Mat & Mpac, Medellin, Colombia
[2] Univ Barcelona, Dept Ciencia Mat & Quim Fis, Barcelona 08028, Spain
[3] Univ Barcelona, Inst Quim Teor & Computac IQTCUB, Barcelona 08028, Spain
[4] Brookhaven Natl Lab, Chem Dept, Upton, NY 11973 USA
关键词
hydrogenation; ethylene; delta-MoC; density functional calculations; coverage; GAS SHIFT REACTION; ELECTRONIC-STRUCTURE; METAL CARBIDES; IN-SITU; SURFACE; WATER; BULK; MOC; ADSORPTION; MECHANISM;
D O I
10.1021/acscatal.0c00144
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
The molecular mechanism of ethylene (C2H4) hydrogenation on a delta-MoC(001) surface has been studied by periodic density functional theory methods. Activation energy barriers and elementary reaction rates have been calculated as a function of the hydrogen surface coverage, theta(H), with relevant properties derived from ab initio thermodynamics and kinetic rate estimates. The hydrogen coverage has a very strong effect on the adsorption energy and the second hydrogenation step of ethylene. A relatively low energy barrier favors the dissociation of H-2 on delta-MoC(001) leading to medium H coverages (>0.4 of a monolayer) where the energy barrier for the full hydrogenation of ethylene is already below the corresponding barriers seen on Pt(111) and Pd(111). At a high H coverage of similar to 0.85 of a monolayer, the C2H4 adsorbs at 1 atm and 300 K over a system having as-formed CH3 moiety species, which critically favors the C2H4 second hydrogenation, typically a rate limiting step, by reducing its activation energy to a negligible value of 0.08 eV, significantly lower than the equivalent values of similar to 0.5 eV reported for Pt(111) and Pd(111) catalyst surfaces. The ethane desorption rate is larger than the surface intermediate elementary reaction rates, pointing to its desorption upon formation, closing the catalytic cycle. The present results put delta-MoC under the spotlight as an economic and improved replacement catalyst for Pt and Pd, with significant improvements in enthalpy and activation energy barriers. Here, we provide a detailed study for the C2H4 hydrogenation reaction mechanism over a carbide showing characteristics or features not seen on metal catalysts. These can be exploited when dealing with technical or industrial applications.
引用
收藏
页码:6213 / 6222
页数:10
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