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  A MASH simulation of the photoexcited dynamics of cyclobutanone

Lawrence, J. E., Ansari, I. M., Mannouch, J., Manae, M. A., Asnaashari, K., Kelly, A., et al. (2024). A MASH simulation of the photoexcited dynamics of cyclobutanone. The Journal of Chemical Physics, 160(17): 174306. doi:10.1063/5.0203695.

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174306_1_5.0203695.pdf (Publisher version), 6MB
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https://arxiv.org/abs/2402.10410 (Preprint)
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 Creators:
Lawrence, J. E.1, 2, 3, Author
Ansari, I. M.1, Author
Mannouch, J.4, 5, Author           
Manae, M. A.1, Author
Asnaashari, K.1, Author
Kelly, A.4, 5, Author           
Richardson, J. O.1, Author
Affiliations:
1Department of Chemistry and Applied Biosciences, ETH Zurich, ou_persistent22              
2Simons Center for Computational Physical Chemistry, New York University, ou_persistent22              
3Department of Chemistry, New York University, ou_persistent22              
4Theory Group, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_2266715              
5Hamburg Center for Ultrafast Imaging, ou_persistent22              

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Free keywords: Ab-initio methods, Non-adiabatic molecular dynamics, Ab-initio molecular dynamics, Complete-active space self-consistent field, Surface hopping, Electron diffraction, Photodissociation, Photoinduced reactions, Photoexcitations, Quantum chemical dynamics
 Abstract: In response to a community prediction challenge, we simulate the nonadiabatic dynamics of cyclobutanone using the mapping approach to surface hopping (MASH). We consider the first 500 fs of relaxation following photoexcitation to the S2 state and predict the corresponding time-resolved electron-diffraction signal that will be measured by the planned experiment. 397 ab initio trajectories were obtained on the fly with state-averaged complete active space self-consistent field using a (12,11) active space. To obtain an estimate of the potential systematic error, 198 of the trajectories were calculated using an aug-cc-pVDZ basis set and 199 with a 6-31+G* basis set. MASH is a recently proposed independent trajectory method for simulating nonadiabatic dynamics, originally derived for two-state problems. As there are three relevant electronic states in this system, we used a newly developed multi-state generalization of MASH for the simulation: the uncoupled spheres multi-state MASH method (unSMASH). This study, therefore, serves both as an investigation of the photodissociation dynamics of cyclobutanone, and also as a demonstration of the applicability of unSMASH to ab initio simulations. In line with previous experimental studies, we observe that the simulated dynamics is dominated by three sets of dissociation products, C3H6 + CO, C2H4 + C2H2O, and C2H4 + CH2 + CO, and we interpret our predicted electron-diffraction signal in terms of the key features of the associated dissociation pathways.

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Language(s): eng - English
 Dates: 2024-02-152024-04-112024-05-022024-05-07
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: arXiv: 2402.10410
DOI: 10.1063/5.0203695
 Degree: -

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Project name : J.E.L. was supported by an Independent Postdoctoral Fellowship at the Simons Center for Computational Physical Chemistry, under a grant from the Simons Foundation (839534, MT). J.R.M. and A.K. are supported by the Cluster of Excellence “CUI: Advanced Imaging of Matter” of the Deutsche Forschungsgemeinschaft (DFG)—EXC 2056—Project ID 390715994.
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Title: The Journal of Chemical Physics
  Abbreviation : J. Chem. Phys.
Source Genre: Journal
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Publ. Info: Woodbury, N.Y. : American Institute of Physics
Pages: - Volume / Issue: 160 (17) Sequence Number: 174306 Start / End Page: - Identifier: ISSN: 0021-9606
CoNE: https://pure.mpg.de/cone/journals/resource/954922836226