Probing
Vibrationally Mediated Ultrafast Excited-State
Reaction Dynamics with Multireference (CASPT2) Trajectories
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Abstract
Excited-state trajectories computed
at the complete active space
second-order perturbation theory (CASPT2) reveal how vibrational excitation
controls the molecular approach to the intersection space that drives
the photodissociation of a prototypical halogenated methyl radical,
namely CF<sub>2</sub>I. Translating the Franck–Condon structure
along the ground-state CASPT2 vibrational modes in this system followed
by propagating the displaced structures in the first excited doublet
state simulates specific vibrational excitations and vibrationally
mediated dynamics, respectively. Three distinct situations are encountered:
the trajectories (i) converge to an energetically flat segment of
the intersection space, (ii) locate a segment of the intersection
space, and (iii) access a region where the intersection space degeneracy
is lifted to form a ridge of avoided crossings. The computational
protocol documented herein can be used as a tool to design control
strategies based on selective excitation of vibrational modes, including
adaptive feedback schemes using coherent light sources