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Quantum dynamics of hydrogen atoms on graphene. I. System-bath modeling
Author(s) -
Matteo Bonfanti,
Bret Jackson,
Keith H. Hughes,
Irène Burghardt,
Rocco Martinazzo
Publication year - 2015
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.4931116
Subject(s) - ab initio , graphene , density functional theory , relaxation (psychology) , molecular dynamics , hydrogen , quantum , potential energy surface , quantum dynamics , atom (system on chip) , chemistry , atomic physics , physics , computational chemistry , quantum mechanics , psychology , social psychology , computer science , embedded system
An accurate system-bath model to investigate the quantum dynamics of hydrogen atoms chemisorbed on graphene is presented. The system comprises a hydrogen atom and the carbon atom from graphene that forms the covalent bond, and it is described by a previously developed 4D potential energy surface based on density functional theory ab initio data. The bath describes the rest of the carbon lattice and is obtained from an empirical force field through inversion of a classical equilibrium correlation function describing the hydrogen motion. By construction, model building easily accommodates improvements coming from the use of higher level electronic structure theory for the system. Further, it is well suited to a determination of the system-environment coupling by means of ab initio molecular dynamics. This paper details the system-bath modeling and shows its application to the quantum dynamics of vibrational relaxation of a chemisorbed hydrogen atom, which is here investigated at T = 0 K with the help of the multi-configuration time-dependent Hartree method. Paper II deals with the sticking dynamics

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