Mixed time-dependent density-functional theory/classical trajectory surface hopping study of oxirane photochemistry

We present a mixed time-dependent density-functional theory (TDDFT)/classical trajectory surface hopping (SH) study of the photochemical ring opening in oxirane. Previous preparatory work limited to the symmetric CC ring-opening pathways of oxirane concluded that the Tamm-Dancoff approximation (TDA)...

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Veröffentlicht in:The Journal of chemical physics 2008-09, Vol.129 (12), p.124108-124108-19
Hauptverfasser: Tapavicza, Enrico, Tavernelli, Ivano, Rothlisberger, Ursula, Filippi, Claudia, Casida, Mark E.
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container_end_page 124108-19
container_issue 12
container_start_page 124108
container_title The Journal of chemical physics
container_volume 129
creator Tapavicza, Enrico
Tavernelli, Ivano
Rothlisberger, Ursula
Filippi, Claudia
Casida, Mark E.
description We present a mixed time-dependent density-functional theory (TDDFT)/classical trajectory surface hopping (SH) study of the photochemical ring opening in oxirane. Previous preparatory work limited to the symmetric CC ring-opening pathways of oxirane concluded that the Tamm-Dancoff approximation (TDA) is important for improving the performance of TDDFT away from the equilibrium geometry. This observation is supported by the present TDDFT TDA/SH calculations which successfully confirm the main experimentally derived Gomer-Noyes mechanism for the photochemical CO ring opening of oxirane and, in addition, provide important state-specific information not easily accessible from experiments. In particular, we find that, while one of the lowest two excited states is photochemically relatively inert, excitation into the other excited state leads predominantly to rapid ring opening, cyclic - C 2 H 4 O → C * H 2 C H 2 O * . This is followed by hopping to the electronic ground state where hot ( 4000 K ) dynamics leads to further reactions, namely, C * H 2 C H 2 O * → C H 3 C H O → C * H 3 + C * H O and C H 4 + C O . We note that, in the dynamics, we are not limited to following minimum energy pathways and several surface hops may actually be needed before products are finally reached. The performance of different functionals is then assessed by comparison of TDDFT and diffusion Monte Carlo potential energy curves along a typical TDDFT TDA/SH reaction path. Finally, although true ( S 0 , S 1 ) conical intersections are expected to be absent in adiabatic TDDFT, we show that the TDDFT TDA is able to approximate a conical intersection in this system.
doi_str_mv 10.1063/1.2978380
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Previous preparatory work limited to the symmetric CC ring-opening pathways of oxirane concluded that the Tamm-Dancoff approximation (TDA) is important for improving the performance of TDDFT away from the equilibrium geometry. This observation is supported by the present TDDFT TDA/SH calculations which successfully confirm the main experimentally derived Gomer-Noyes mechanism for the photochemical CO ring opening of oxirane and, in addition, provide important state-specific information not easily accessible from experiments. In particular, we find that, while one of the lowest two excited states is photochemically relatively inert, excitation into the other excited state leads predominantly to rapid ring opening, cyclic - C 2 H 4 O → C * H 2 C H 2 O * . This is followed by hopping to the electronic ground state where hot ( 4000 K ) dynamics leads to further reactions, namely, C * H 2 C H 2 O * → C H 3 C H O → C * H 3 + C * H O and C H 4 + C O . We note that, in the dynamics, we are not limited to following minimum energy pathways and several surface hops may actually be needed before products are finally reached. The performance of different functionals is then assessed by comparison of TDDFT and diffusion Monte Carlo potential energy curves along a typical TDDFT TDA/SH reaction path. 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Previous preparatory work limited to the symmetric CC ring-opening pathways of oxirane concluded that the Tamm-Dancoff approximation (TDA) is important for improving the performance of TDDFT away from the equilibrium geometry. This observation is supported by the present TDDFT TDA/SH calculations which successfully confirm the main experimentally derived Gomer-Noyes mechanism for the photochemical CO ring opening of oxirane and, in addition, provide important state-specific information not easily accessible from experiments. In particular, we find that, while one of the lowest two excited states is photochemically relatively inert, excitation into the other excited state leads predominantly to rapid ring opening, cyclic - C 2 H 4 O → C * H 2 C H 2 O * . This is followed by hopping to the electronic ground state where hot ( 4000 K ) dynamics leads to further reactions, namely, C * H 2 C H 2 O * → C H 3 C H O → C * H 3 + C * H O and C H 4 + C O . We note that, in the dynamics, we are not limited to following minimum energy pathways and several surface hops may actually be needed before products are finally reached. The performance of different functionals is then assessed by comparison of TDDFT and diffusion Monte Carlo potential energy curves along a typical TDDFT TDA/SH reaction path. 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Previous preparatory work limited to the symmetric CC ring-opening pathways of oxirane concluded that the Tamm-Dancoff approximation (TDA) is important for improving the performance of TDDFT away from the equilibrium geometry. This observation is supported by the present TDDFT TDA/SH calculations which successfully confirm the main experimentally derived Gomer-Noyes mechanism for the photochemical CO ring opening of oxirane and, in addition, provide important state-specific information not easily accessible from experiments. In particular, we find that, while one of the lowest two excited states is photochemically relatively inert, excitation into the other excited state leads predominantly to rapid ring opening, cyclic - C 2 H 4 O → C * H 2 C H 2 O * . This is followed by hopping to the electronic ground state where hot ( 4000 K ) dynamics leads to further reactions, namely, C * H 2 C H 2 O * → C H 3 C H O → C * H 3 + C * H O and C H 4 + C O . We note that, in the dynamics, we are not limited to following minimum energy pathways and several surface hops may actually be needed before products are finally reached. The performance of different functionals is then assessed by comparison of TDDFT and diffusion Monte Carlo potential energy curves along a typical TDDFT TDA/SH reaction path. Finally, although true ( S 0 , S 1 ) conical intersections are expected to be absent in adiabatic TDDFT, we show that the TDDFT TDA is able to approximate a conical intersection in this system.</abstract><cop>United States</cop><pub>American Institute of Physics</pub><pmid>19045007</pmid><doi>10.1063/1.2978380</doi><tpages>1</tpages><oa>free_for_read</oa></addata></record>
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subjects ATOMIC AND MOLECULAR PHYSICS
EPOXIDES
EXCITED STATES
GROUND STATES
MONTE CARLO METHOD
PHOTOCHEMISTRY
SURFACES
TIME DEPENDENCE
title Mixed time-dependent density-functional theory/classical trajectory surface hopping study of oxirane photochemistry
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