Six-dimensional dynamics of dissociative chemisorption of H2 on metal surfaces

被引:73
|
作者
Kroes, GJ [1 ]
Somers, MF [1 ]
机构
[1] Leiden Univ, Gorlaeus Labs, Leiden Inst Chem, NL-2300 RA Leiden, Netherlands
来源
关键词
molecule-surface reaction dynamics; rovibrationally inelastic molecule surface scattering; diffraction; time-dependent wave packet method; density functional theory;
D O I
10.1142/S0219633605001647
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The theory of time-dependent quantum dynamics of dissociative chemisorption of hydrogen on metal surfaces is reviewed, in the framework of electronically adiabatic scattering from static surfaces. Four implementations of the time-dependent wave packet (TDWP) method axe discussed. In the direct product pseudo-spectral and the spherical harmonics pseudo-spectral methods, no use is made of the symmetry associated with the surface unit cell. This symmetry is exploited by the symmetry adapted wave packet and the symmetry adapted pseudo-spectral (SAPS) method, which are efficient for scattering at normal incidence. The SAPS method can be employed for potential energy surfaces of general form. Comparison to experiment shows that the TDWP method yields good, but not yet excellent, quantitative accuracy for dissociation of (v = 0, j = 0) H-2 if the calculations are based on accurately fitted density functional theory calculations that are performed using the generalized gradient approximation. The influence of the molecule's vibration (rotation) is well (reasonably well) described. The theory does not yet yield quantitatively accurate results for rovibrationally inelastic scattering. The theory has helped with the interpretation of existing experimental results, for instance, by solving a parodox regarding the corrugation of Pt(111) as seen by reacting and scattering H-2. The theory has also provided some exciting new predictions, for instance, concerning where on the surface of Cu(100) H-2 reacts depending on its vibrational state. Future theoretical studies of H-2 reacting on metal surfaces will likely be aimed at validating GGAs for molecule-surface interactions, and understanding trends in collisions of H-2 with complex metal surfaces.
引用
收藏
页码:493 / 581
页数:89
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