Issue 6, 2024

A computational study of a light-driven artificial device: a third generation rotational photo-molecular motor in dilute solutions

Abstract

A third-generation artificial photo-molecular motor, featuring two photo-switchable rotating moieties in connection with a pseudoasymmetric molecular centre, is investigated by combining quantum-mechanics (QM) algorithms with classical molecular dynamics (MD) propagators. In particular, in the present contribution we have addressed such a molecular motor in different rotational isomers following the experimental observations arising from the application of multiple spectroscopic techniques in dilute solutions. At first, we focused our attention on the reproduction of the UV/Vis absorption spectrum in two solvents (acetonitrile and cyclohexane) with different gradient-corrected density functional theory (B3LYP, Cam-B3LYP, PBE, PBE0) functionals in conjunction with the conductor-like and polarizable continuum model (C-PCM). Furthermore, we refined the absorption signals by combining a classical MD sampling at room-temperature with DFT-based electronic degrees of freedom to compute perturbed excitation wavelengths driven by thermal fluctuation and solvation effects. In this respect, we have modelled the investigated artificial motor within solution nanodroplets with solvent molecules treated contextually at atomistic level and via a dielectric and polarizable continuum model.

Graphical abstract: A computational study of a light-driven artificial device: a third generation rotational photo-molecular motor in dilute solutions

Supplementary files

Article information

Article type
Paper
Submitted
21 Oct 2023
Accepted
20 Jan 2024
First published
26 Jan 2024

Phys. Chem. Chem. Phys., 2024,26, 5399-5407

A computational study of a light-driven artificial device: a third generation rotational photo-molecular motor in dilute solutions

C. Zazza, S. Borocci and N. Sanna, Phys. Chem. Chem. Phys., 2024, 26, 5399 DOI: 10.1039/D3CP05116A

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