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Updated: Jan 7, 2026

Ultrafast Time-resolved Near-IR Stimulated Raman Measurements of Functional π-conjugate Systems
Published on: February 10, 2020
Elucidation of Ultrafast Decay, Vibrational Beating, and Slow Decay Processes of Excited Azulene
Woojin Park1, Jong Min Lim1, Seogjoo J Jang2,3,4
1Department of Chemistry, Kyungpook National University, Daegu 41566, South Korea.
Abstract:
Azulene's nonradiative decay dynamics and kinetics from its singlet excited-states were studied using mixed-reference spin-flip time-dependent density functional theory (MRSF-TDDFT) combined with trajectory surface-hopping nonadiabatic molecular dynamics (NAMD) and Fermi's golden rule (FGR) rate theory. The NAMD dynamics reproduce experimental observations that the S1 → S0 decay is accelerated and exhibits a crossover from mono- to biexponential kinetics with increasing excess vibrational energy. Minimum-energy-path analyses reveal a continuous S1/S0 conical-intersection seam slightly above the S1 minimum, providing readily accessible funnels. Time-resolved normal-mode projections reveal selective energy funneling into C-C stretching modes at 1272, 1528, and 1692 cm-1. Constructive combinations of the latter two modes appear to promote rapid access to the conical-intersection seam, whereas their beating at ∼ 160 fs imposes a natural limit on the decrease of the decay time upon a further increase of excess energies, suggesting that their interference delays the decay. The FGR rate calculation data for the S1 → S0 transition reaffirm that the nonradiative decay proceeds mainly near or through the conical intersection, rather than via simple nonadiabatic derivative coupling around the minimum of S1. On the other hand, the FGR rates indicate that S2 decays predominantly to S0, as the S2-S1 vibronic coupling is exceptionally weak, which serves as a primary cause for azulene's characteristic anti-Kasha emission.
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