Platinum Nanoclusters Exhibit Enhanced Catalytic Activity for Methane Dehydrogenation

被引:0
作者
Zhuo Cheng
Nathan A. Fine
Cynthia S. Lo
机构
[1] Washington University,Department of Energy, Environmental and Chemical Engineering
来源
Topics in Catalysis | 2012年 / 55卷
关键词
Ab initio calculations; Catalysis; Nanotechnology; Density-functional theory; Reaction kinetics;
D O I
暂无
中图分类号
学科分类号
摘要
Methane utilization, whether by steam reforming or selective oxidation to produce synthesis gas or alcohols, requires the activation and dissociation of at least one carbon–hydrogen bond. At high temperatures, using platinum nanoparticles as catalysts, this process operates with low activity. However, the catalyst particle shape may be controlled at low temperatures, and faceted particles may catalyze hydrocarbon transformation with increased activity. In this study, we use density functional theory calculations to calculate the thermodynamics of methane dehydrogenation on both (hemi)spherical and tetrahedral platinum nanoclusters. We show all steps of methane dehydrogenation on the hemispherical cluster have high activation barriers (0.4–1.0 eV), thus requiring high temperatures for this process. However, the energy barriers for methane dehydrogenation on the tetrahedral cluster are lower than the corresponding barriers on the hemispherical cluster, and in particular, the dissociation of the methyl group to form methylene and hydrogen has an activation barrier of only 0.2 eV. Thus, we expect that hydrogen production from methane would proceed at a higher rate and conversion on tetrahedral clusters than on hemispherical clusters. The resulting hydrogen and carbon-containing species may then serve as building blocks for the production of chemicals and fuels. We believe that catalyst shape is vitally important in controlling catalytic activity, and the use of faceted catalyst particles opens up possibilities for low-temperature and energy-efficient hydrocarbon transformations.
引用
收藏
页码:345 / 352
页数:7
相关论文
共 167 条
[21]  
Nielsen L(1996)An extended Hückel theory. I. Hydrocarbons Physical Review B 54 11,169-11,186
[22]  
Molenbroek A(1993)Inhomogeneous electron gas Physical Review B 47 558-561
[23]  
Rostrup-Nielsen J(1994)Chemisorption of (CH Physical Review B 49 14,251-14,269
[24]  
Bisson R(1998) and C J Phys Chem B 102 9492-9500
[25]  
Sacchi M(2010)H Phys Chem Chem Phys 12 10,288-10,291
[26]  
Dang TT(2009)) hydrocarbons on Pt(111) clusters and surfaces from dft studies Nat Mater 8 132-138
[27]  
Yoder B(2010)Self-consistent equations including exchange and correlation effects J Mater Chem 20 3791-3798
[28]  
Maroni P(2000)Engineering the reactivity of metal catalysts: a model study of methane dehydrogenation on Rh(111) J Am Chem Soc 122 4129-4144
[29]  
Beck RD(2007)Efficiency of ab-initio total energy calculations for metals and semiconductors using a plane-wave basis set Applied Catalysis A: General 317 293-298
[30]  
Blöchl PE(1996)Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set Phys Rev Lett 77 3865-3868