Over the years, theoretical calculations and scalable computer simulations have complemented ultrafast experiments, as they offer the advantage of overcoming experimental restrictions and having access to the whole dynamics. This synergy between theory and experiment promises to yield a deeper understanding of photochemical processes, offering valuable insights into the behavior of complex systems at the molecular level. However, the ability of theoretical models to predict ultrafast experimental outcomes has remained largely unexplored. In this work, we aim to predict the electron diffraction signals of an upcoming ultrafast photochemical experiment using high-level electronic structure calculations and non-adiabatic dynamics simulations. In particular, we perform trajectory surface hopping with extended multi-state complete active space with second order perturbation simulations for understanding the photodissociation of cyclobutanone (CB) upon excitation at 200 nm. Spin–orbit couplings are considered for investigating the role of triplet states. Our simulations capture the bond cleavage after ultrafast relaxation from the 3s Rydberg state, leading to the formation of the previously observed primary photoproducts: CO + cyclopropane/propene (C3 products), ketene, and ethene (C2 products). The ratio of the C3:C2 products is found to be about 1:1. Within 700 fs, the majority of trajectories transition to their electronic ground state, with a small fraction conserving the initial cyclobutanone ring structure. We found a minimal influence of triplet states during the early stages of the dynamics, with their significance increasing at later times. We simulate MeV-ultrafast electron diffraction (UED) patterns from our trajectory results, linking the observed features with specific photoproducts and the underlying structural dynamics. Our analysis reveals highly intense features in the UED signals corresponding to the photochemical processes of CB. These features offer valuable insights into the experimental monitoring of ring opening dynamics and the formation of C3 and C2 photoproducts.
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14 July 2024
Research Article|
July 10 2024
Non-adiabatic dynamics of photoexcited cyclobutanone: Predicting structural measurements from trajectory surface hopping with XMS-CASPT2 simulations Available to Purchase
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Prediction Challenge: Cyclobutanone Photochemistry
Patricia Vindel-Zandbergen
;
Patricia Vindel-Zandbergen
a)
(Conceptualization, Data curation, Formal analysis, Investigation, Software, Visualization, Writing – original draft)
1
Department of Chemistry, New York University
, New York, New York 10003, USA
a)Author to whom correspondence should be addressed: [email protected]
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Jesús González-Vázquez
Jesús González-Vázquez
(Formal analysis, Software, Writing – original draft)
2
Departamento de Química, Universidad Autónoma de Madrid
, Cantoblanco, 28049 Madrid, Spain
3
Institute of Advanced Chemistry (IADChem), Universidad Autónoma de Madrid
, Cantoblanco, 28049 Madrid, Spain
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Patricia Vindel-Zandbergen
1,a)
Jesús González-Vázquez
2,3
1
Department of Chemistry, New York University
, New York, New York 10003, USA
2
Departamento de Química, Universidad Autónoma de Madrid
, Cantoblanco, 28049 Madrid, Spain
3
Institute of Advanced Chemistry (IADChem), Universidad Autónoma de Madrid
, Cantoblanco, 28049 Madrid, Spain
a)Author to whom correspondence should be addressed: [email protected]
J. Chem. Phys. 161, 024104 (2024)
Article history
Received:
February 16 2024
Accepted:
June 12 2024
Citation
Patricia Vindel-Zandbergen, Jesús González-Vázquez; Non-adiabatic dynamics of photoexcited cyclobutanone: Predicting structural measurements from trajectory surface hopping with XMS-CASPT2 simulations. J. Chem. Phys. 14 July 2024; 161 (2): 024104. https://doi.org/10.1063/5.0203722
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