Luppi Marcello, Olsen R A, Baerends E J
Theoretical Chemistry Department, Vrije Universiteit, 1081HV Amsterdam, The Netherlands.
Phys Chem Chem Phys. 2006 Feb 14;8(6):688-96. doi: 10.1039/b513033f. Epub 2005 Nov 24.
The six-dimensional (6D) potential energy surface (PES) for the H(2) molecule interacting with a clean Ru(0001) surface has been computed accurately for the first time. Density functional theory (DFT) and a pseudopotential based periodic plane-wave approach have been used to calculate the electronic interactions between the molecule and the surface. Two different generalized gradient approximation (GGA) exchange-correlation functionals, PW91 and RPBE, have been adopted. Based on the DFT/GGA calculated potential energies, an analytical 6D PES has been constructed using the corrugation reducing procedure. A very accurate representation of the DFT/GGA data has been achieved, with an average error in the interpolation of about 3 meV and a maximum error not larger than about 30 meV. The top site is found to be the most reactive site for both functionals used, but PW91 predicts a higher reactivity than RPBE, with lower-energy and earlier-located dissociation barriers. The energetic corrugation displayed by the RPBE PES is larger than the PW91 PES while the geometric corrugation is smaller. The differences between the two PESs increase as the distance of the molecular center of mass to the surface decreases. A direct comparison with experimental investigations on H(2)/Ru(0001) could shed light on the suitability of these XC potentials often used in DFT calculations.
首次精确计算了H₂分子与清洁Ru(0001)表面相互作用的六维(6D)势能面(PES)。采用密度泛函理论(DFT)和基于赝势的周期性平面波方法计算分子与表面之间的电子相互作用。采用了两种不同的广义梯度近似(GGA)交换关联泛函PW91和RPBE。基于DFT/GGA计算的势能,使用波纹减少程序构建了一个解析6D PES。对DFT/GGA数据实现了非常精确的表示,插值平均误差约为3 meV,最大误差不大于约30 meV。发现顶位对所使用的两种泛函都是最具反应活性的位点,但PW91预测的反应活性高于RPBE,具有更低的能量和更早定位的解离势垒。RPBE PES显示的能量波纹大于PW91 PES,而几何波纹较小。随着分子质心到表面距离的减小,两个PES之间的差异增大。与H₂/Ru(0001)的实验研究进行直接比较,可能有助于了解这些常用于DFT计算的XC势的适用性。