Axial H-bonding Solvent Controls Inhomogeneous Spectral Broadening, Peripheral H-bonding Solvent Controls Vibronic Broadening: Cresyl Violet in Methanol

06 March 2024, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

The dynamics of the nuclei of both chromophore and its condensed phase environment control many spectral features, including the vibronic and inhomogeneous broadening present in spectral lineshapes. For the cresyl violet chromophore in methanol, we here analyze and isolate the effect of specific chromophore-solvent interactions on simulated spectral densities, reorganization energies, and linear absorption spectra. Employing both force field and ab initio molecular dynamics trajectories along with the inclusion of only certain solvent molecules in the excited state calculations, we determine that the methanol molecules axial to the chromophore are responsible for the majority of the inhomogeneous broadening, with a single methanol molecule that forms an axial hydrogen bond dominating the response. The strong peripheral hydrogen bonds do not contribute to spectral broadening, as they are very stable throughout the dynamics and do not lead to increased energy gap fluctuations. We also find that treating the strong peripheral hydrogen bonds as molecular mechanical point charges during the molecular dynamics simulation underestimates the vibronic coupling. Including these peripheral hydrogen bonding methanol molecules in the quantum mechanical region in a geometry optimization increases the vibronic coupling, suggesting that a more advanced treatment of these strongly interacting solvent molecules during the molecular dynamics trajectory may be necessary to capture the full vibronic spectral broadening.

Keywords

Spectroscopy
Molecular Dynamics
TDDFT

Supplementary materials

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Title
Supporting Information for "Axial H-bonding Solvent Controls Inhomogeneous Spectral Broadening, Peripheral H-bonding Solvent Controls Vibronic Broadening: Cresyl Violet in Methanol"
Description
Supporting Information contains DFT benchmark calculations, GAFF results, MD equilibration, energies of excited states, electric field analysis, charges, long timescale FFMD simulations, unshifted absorption spectra, QM solvent effects, and Franck-Condon vibronic spectra simulations for explicit solvent configurations.
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