Department Chemie & Catalysis Research Center, Technische Universität München, Garching, Germany.
Phys Chem Chem Phys. 2012 Dec 14;14(46):16062-9. doi: 10.1039/c2cp43080k.
Motivated by the use of electrodes modified at the nanoscale by supported metal species, we studied computationally how the reactivity changes in such a composite system compared to the reactivity of the individual systems, metal clusters and metal surfaces. Specifically, we examined hydrogen adsorption on and hydrogen spillover from Au- and Cu-supported Pt(3) and Pd(3) clusters, using a method based on Density Functional Theory. Two distinctive types of sites were found for the adsorption of atomic hydrogen: (i) on the supported clusters and (ii) at the cluster-substrate interfaces. The adsorption energy of hydrogen on the supported clusters is ∼20 kJ mol(-1) smaller when the cluster is supported by Cu instead of Au. In contrast, the substrate has no effect on hydrogen adsorbed at the cluster-substrate interfaces. Adsorbed Pt(3) and Pd(3) clusters locally modify the reactivity of the substrates as quantified by the reduced adsorption energy of hydrogen compared to the corresponding clean substrate. Hydrogen dissociative adsorption followed by spillover is thermodynamically and kinetically favored for clusters supported on a Cu surface, but not on Au. Moreover, spillover of hydrogen is more likely from metal-supported Pd than Pt clusters as revealed by barriers that are calculated 40-50 kJ mol(-1) lower in energy.
受纳米尺度上受载体金属物种修饰的电极的启发,我们通过基于密度泛函理论的方法,计算研究了与单个体系、金属团簇和金属表面相比,这种复合体系的反应活性如何变化。具体来说,我们研究了氢在 Au 和 Cu 负载的 Pt(3)和 Pd(3)团簇上的吸附和氢溢出,考察了原子氢在以下两种不同类型的吸附位上的吸附:(i)负载在团簇上和(ii)在团簇-基底界面上。当团簇由 Cu 而不是 Au 支撑时,氢在负载的团簇上的吸附能会减小约 20 kJ mol(-1)。相比之下,基底对吸附在团簇-基底界面上的氢没有影响。吸附的 Pt(3)和 Pd(3)团簇局部改变了基底的反应活性,这可以通过与相应的清洁基底相比,氢的吸附能降低来量化。对于负载在 Cu 表面上的团簇,氢的解离吸附随后溢出在热力学和动力学上是有利的,但在 Au 上则不然。此外,与 Pt 团簇相比,Pd 团簇更容易发生氢溢出,这可以通过计算出的能量低 40-50 kJ mol(-1)的势垒来揭示。