Projects per year
Abstract
The ultrafast photophysics of many isomerizing molecules involves subpicosecond formation of a twisted hot ground state, which transfers energy to the environment through vibrational relaxation (cooling) over several picoseconds. In time-resolved infrared (TR-IR) spectroscopy, hot ground state transients show frequency shifts and band reshapings, which cannot be described through kinetic models that assume static spectral functions. We report a simple anharmonic cascade framework, which uses a single adjustable parameter associated with scaling the probability of vibrational energy transfer to the environment, for describing hot ground state cooling (HGSC) in TR-IR spectroscopy. The model is demonstrated against measurements on the cyan fluorescent protein chromophore. To best describe HGSC band shape evolution, the model utilizes ab initio data on anharmonic vibrational structure and nonadiabatic molecular dynamics trajectories of S1→ S0 internal conversion for realistic vibration occupation numbers of the nascent hot ground state. The modeling framework is readily extended to include mode-specific rates for intermolecular energy transfer and can be applied to any ultrafast isomerizing molecule for which anharmonic vibrational properties can be computed.
| Original language | English |
|---|---|
| Pages (from-to) | 13267-13276 |
| Number of pages | 10 |
| Journal | The Journal of Physical Chemistry B |
| Volume | 129 |
| Issue number | 51 |
| Early online date | 10 Dec 2025 |
| DOIs | |
| Publication status | Published - 25 Dec 2025 |
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Femtosecond to Millisecond Photo-dynamics of Third Generation Fluorescent Proteins
Meech, S. (Principal Investigator)
Engineering and Physical Sciences Research Council
8/05/23 → 31/10/26
Project: Research
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Excited state dynamics of shape-shifting molecules
Bull, J. (Principal Investigator)
Engineering and Physical Sciences Research Council
1/04/22 → 30/09/25
Project: Research
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