Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5361141 | Applied Surface Science | 2009 | 6 Pages |
Abstract
Density-functional theory was presented to investigate the hydrogen dissociation on a pure, Pt-doped, vacancy and oxide Mg(0Â 0Â 0Â 1) surface. Our results show that the energy barriers are 1.05, 0.39, 0.93 and 1.33Â eV for H2 dissociation on the pure, Pt-doped, vacancy and oxide Mg surface, respectively. The calculation results imply that the initial dissociation of H2 is enhanced significantly for the Pt-doped Mg(0Â 0Â 0Â 1) surface, negligible for the vacancy model and weekend for the oxide model. The density of state results shows that, following the dissociation reaction coordinate, the H-H interactions are weeker for the Pt-doped model while interactions become stronger for the oxide model. It is suggested that the dissociation process is facilitated when Pt atom acts as catalyst and oxide overlayers delay hydrogen adsorption on the Mg layer. The present study will help us understand the defect role being played for the improvement or opposition effect in absorption kinetics of H2 on the Mg(0Â 0Â 0Â 1) surface.
Related Topics
Physical Sciences and Engineering
Chemistry
Physical and Theoretical Chemistry
Authors
Guangxin Wu, Jieyu Zhang, Yongquan Wu, Qian Li, Kuochih Chou, Xinhua Bao,