Theoretical Study of the Water-Gas Shift Reaction Catalyzed by Tungsten Carbonyls

被引:0
作者
Xiaoyu An
Ling Guo
Aixia Li
Zhaoru Cao
Naying Liu
机构
[1] Shanxi Normal University,School of Chemistry and Material Science, School of Modern Arts and Sciences
来源
Catalysis Surveys from Asia | 2016年 / 20卷
关键词
Density functional theory; Water-gas-shift reaction; Bimetallic catalyst; Metal–metal cooperativity; Turnover frequency;
D O I
暂无
中图分类号
学科分类号
摘要
A density functional theory calculation has been carried out to investigate the mechanism of W(CO)6 and W2(CO)10 catalyzed water-gas-shift reaction (WGSR). The calculations indicate that the bimetallic catalyst (W2(CO)10) would be likely to be more highly active than the mononuclear metal-based catalyst (W(CO)6) due to the possibility of metal–metal cooperativity in reducing the barriers for the WGSR. The energetic span model is a tool to compute catalytic turnover frequencies (TOFs) which is the traditional measure of the efficiency of a catalyst. The one with the highest efficiency usually gives the highest TOF. The bimetallic catalyst (W2(CO)10) exhibits high catalytic activity towards WGSR due to the highest value of the calculated TOF (3.62 × 10−12 s−1, gas phase; 8.74 × 10−15 s−1, solvent phase), which is higher than the value of TOF (8.96 × 10−20 s−1, gas phase; 3.96 × 10−19 s−1, solvent phase) proposed by Kuriakose et al. (Inorg Chem 51:377–385, 2012). Our results will be important for designing a better catalyst for the industrially important reaction.
引用
收藏
页码:109 / 120
页数:11
相关论文
共 121 条
[11]  
Torrent M(2012)undefined Inorg Chem 51 377-385
[12]  
Solà M(2004)undefined Organometallics 23 5182-5187
[13]  
Frenking G(2005)undefined Organometallics 24 6398-6410
[14]  
Barrows SE(1981)undefined Acc Chem Res 14 37-42
[15]  
Zhang FL(1977)undefined J Am Chem Soc 99 252-253
[16]  
Zhao L(1979)undefined Inorg Chim Acta 37 61-65
[17]  
Xu C(2003)undefined Organometallics 22 4869-4872
[18]  
Chen Y(2010)undefined Chem Eur J 16 2574-2585
[19]  
Rozanska X(2011)undefined Acc Chem Res 44 101-110
[20]  
Vuilleumier R(1993)undefined J Chem Phys 98 5648-5652