Abstract
We report high-level calculations of the excited states of [2,2]-paracyclophane
(PCP), which was recently investigated experimentally by ultrafast pump-probe experiments
on oriented single crystals [Haggag et al., ChemPhotoChem 6 e202200181
(2022)]. PCP, in which the orientation of the two benzene rings and their range of
motion are constrained, serves as a model for studying benzene exciplex formation.
The character of the excimer state and the state responsible for the brightest transition
are similar to those in benzene dimer. The constrained structure of PCP allows
one to focus on the most important degree of freedom, the inter-ring distance. The
calculations explain the main features of the transient absorption spectral evolution.
This brightest transition of the excimer is polarized along the inter-fragment axis.
The absorption of light polarized in the plane of the rings reveals the presence of
other absorbing states of Rydberg character, with much weaker intensities. We also
report new transient absorption data obtained by a broadband 8 fs pump, which
time-resolve strong modulations of the excimer absorption. The combination of theory
and experiment provides a detailed picture of the evolution of the electronic
structure of the PCP excimer in the course of a single molecular vibration.
Supplementary materials
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Supplementary Materials
Description
Contains raw data from calculations including: structures, transition energies, dipole strengths and polarization calculated both by TD-DFT and EOM-CCSD.
The text also contains obtained potential surfaces along the inter-ring breathing mode + their fitting to an harmonic potential.
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Title
Structures, Transition energies and Dipole strengths along the S1 inter ring breathing mode of PCP
Description
Structures, Transition energies and Dipole strengths along the S1 inter ring breathing mode of PCP
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