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Regulating energy transfer of excited carriers and the case for excitation-induced hydrogen dissociation on hydrogenated graphene
Author(s) -
Junhyeok Bang,
Sheng Meng,
YiYang Sun,
Damien West,
Zhiguo Wang,
Fei Gao,
Shengbai Zhang
Publication year - 2012
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1210313110
Subject(s) - graphane , excited state , antibonding molecular orbital , graphene , chemical physics , dissociation (chemistry) , atomic physics , materials science , excitation , ab initio , hydrogen , density functional theory , molecular physics , chemistry , computational chemistry , nanotechnology , physics , atomic orbital , electron , quantum mechanics , organic chemistry
Understanding and controlling of excited carrier dynamics is of fundamental and practical importance, particularly in photochemistry and solar energy applications. However, theory of energy relaxation of excited carriers is still in its early stage. Here, using ab initio molecular dynamics (MD) coupled with time-dependent density functional theory, we show a coverage-dependent energy transfer of photoexcited carriers in hydrogenated graphene, giving rise to distinctively different ion dynamics. Graphene with sparsely populated H is difficult to dissociate due to inefficient transfer of the excitation energy into kinetic energy of the H. In contrast, H can easily desorb from fully hydrogenated graphane. The key is to bring down the H antibonding state to the conduction band minimum as the band gap increases. These results can be contrasted to those of standard ground-state MD that predict H in the sparse case should be much less stable than that in fully hydrogenated graphane. Our findings thus signify the importance of carrying out explicit electronic dynamics in excited-state simulations.

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