A QM/MM study of the conformation stability and electronic structure of the photochromic switches derivatives of DHA/VHF in acetonitrile solution.

Spectrochim Acta A Mol Biomol Spectrosc

Instituto de Física, Universidade de São Paulo, Rua do Matão 1371, Cidade Universitária, 05508-090 São Paulo, Brazil. Electronic address:

Published: April 2021

AI Article Synopsis

  • The study investigates the electronic absorption spectra and thermodynamics of molecular photoswitches made from dihydroazulene (DHA) and vinylheptafulvene (VHF) with a focus on six isomers formed by opening and closing the DHA rings.
  • It employs a combination of Molecular Mechanics and Quantum Mechanics to assess the solvent effects of acetonitrile and utilizes computational methods like Free Energy Perturbation and Configurational Bias Monte Carlo for thermochemical analysis.
  • The findings reveal that there isn’t a significant thermal energy gain in the reverse reaction for the DHA units, while absorption spectra align closely with experimental data, differing by only 0.1 eV.

Article Abstract

We present a detailed theoretical study of the electronic absorption spectra and thermochemistry of molecular photoswitches composed of one and two photochromic units of dihydroazulene (DHA)/vinylheptafulvene (VHF) molecules. Six different isomers are considered depending on the ring opening/closure forms of the DHA units. The solvent effect of acetonitrile is investigated using a sequential Molecular Mechanics/Quantum Mechanics approach. The thermochemical investigations of these photochromic molecules were performed using the Free Energy Perturbation method, and the simulations were performed using Configurational Bias Monte Carlo. We show that to open the 5-member ring of the DHA, there is no significant gain in thermal release of energy for the back reaction when a unit or two DHA units are considered. Overall, we found agreement between the solvation free energy based on Monte Carlo simulations and the continuum solvent model. However, the cavitation term in the continuum model is shown to be a source of disagreement when the non-electrostatic terms are compared. The electronic absorption spectra are calculated using TDDFT CAM-B3LYP/cc-pVDZ. Agreement with experiment is obtained within 0.1 eV, considering statistically uncorrelated configurations from the simulations. Inhomogeneous broadening is also considered and found to be well described in all cases.

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Source
http://dx.doi.org/10.1016/j.saa.2021.119434DOI Listing

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