STOCHASTIC SIMULATIONS OF THE TRAPPING OF ETHANE ON PT(111) FROM A REALISTIC POTENTIAL - THE ROLES OF ENERGY-TRANSFER PROCESSES AND SURFACECORRUGATION

Citation
Ja. Stinnett et al., STOCHASTIC SIMULATIONS OF THE TRAPPING OF ETHANE ON PT(111) FROM A REALISTIC POTENTIAL - THE ROLES OF ENERGY-TRANSFER PROCESSES AND SURFACECORRUGATION, The Journal of chemical physics, 104(8), 1996, pp. 3134-3142
Citations number
74
Categorie Soggetti
Physics, Atomic, Molecular & Chemical
ISSN journal
00219606
Volume
104
Issue
8
Year of publication
1996
Pages
3134 - 3142
Database
ISI
SICI code
0021-9606(1996)104:8<3134:SSOTTO>2.0.ZU;2-K
Abstract
Classical three dimensional stochastic trajectory simulations using an empirical pairwise additive Morse potential were employed to model th e molecular adsorption of ethane on cold Pt(111). A single set of para meters was found which quantitatively represents the dependence of the initial adsorption probability on incident energy and angle and accur ately reproduces scattering distributions of ethane from Pt(111). The simulations suggest that, on average, rotational excitation serves as an effective temporary energy storage mechanism which facilitates trap ping. Excess rotational excitation into cartwheel motion, however, can cause ethane to scatter by a chattering collision. At moderate transl ational energies trapping is determined primarily by energy transfer f rom translational energy to cartwheel rotation and surface phonons for molecules incident along the surface normal, whereas cartwheel rotati on combined with parallel translational energy retention determine tra pping at glancing angles of incidence. As the incident translational e nergy is increased, trapping becomes more dependent on the excitation of cartwheel rotational excitation at normal incidence. Finally, the t rapping probability of ethane on Pt(111) was found to be determined to within 10% by the fate of the first bounce. (C) 1996 American Institu te of Physics.