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Dihydropyrene/Cyclophanediene Photoswitching Mechanism Revisited with Spin-Flip Time-Dependent Density Functional Theory: Nature of the Photoisomerization Funnel at Stake!
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    A: Structure, Spectroscopy, and Reactivity of Molecules and Clusters

    Dihydropyrene/Cyclophanediene Photoswitching Mechanism Revisited with Spin-Flip Time-Dependent Density Functional Theory: Nature of the Photoisomerization Funnel at Stake!
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    • Elise Lognon
      Elise Lognon
      Laboratoire de Chimie et Physique Quantiques, FeRMI, Université Paul Sabatier, CNRS, Université de Toulouse, 31062 Toulouse, France
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    • Rudraditya Sarkar
      Rudraditya Sarkar
      Laboratoire de Chimie et Physique Quantiques, FeRMI, Université Paul Sabatier, CNRS, Université de Toulouse, 31062 Toulouse, France
      Institut de Química Computacional I Catàlisi, Facultat de Ciències, University of Girona, C/M. Aurèlia Campmany, 69, 17003 Girona, Spain
    • Marie-Catherine Heitz
      Marie-Catherine Heitz
      Laboratoire de Chimie et Physique Quantiques, FeRMI, Université Paul Sabatier, CNRS, Université de Toulouse, 31062 Toulouse, France
    • Martial Boggio-Pasqua*
      Martial Boggio-Pasqua
      Laboratoire de Chimie et Physique Quantiques, FeRMI, Université Paul Sabatier, CNRS, Université de Toulouse, 31062 Toulouse, France
      *Email: [email protected]
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    The Journal of Physical Chemistry A

    Cite this: J. Phys. Chem. A 2023, 127, 13, 2921–2935
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    https://doi.org/10.1021/acs.jpca.3c00766
    Published March 28, 2023
    Copyright © 2023 American Chemical Society

    Abstract

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    The complex photoisomerization mechanism of the dihydropyrene (DHP) photochromic system is revisited using spin-flip time-dependent density functional theory (SF-TD-DFT). The photoinduced ring-opening reaction of DHP into its cyclophanediene isomer involves multiple coupled electronic states of different character. A balanced treatment of both static and dynamic electron correlations is required to determine both the photophysical and photochemical paths in this system. The present results provide a refinement of the mechanistic picture provided in a previous complete active space self-consistent field plus second-order perturbation theory (CASPT2//CASSCF) study based on geometry optimizations at the CASSCF level. In particular, the nature of the conical intersection playing the central role of the photochemical funnel is different. While at the CASSCF level, the crossing with the ground state involves a covalent doubly excited state leading to a three-electron/three-center bond conical intersection, SF-TD-DFT predicts a crossing between the ground state and a zwitterionic state. These results are supported by multi-state CASPT2 calculations. This study illustrates the importance of optimizing conical intersections at a sufficiently correlated level of theory to describe a photochemical path involving crossings between covalent and ionic states.

    Copyright © 2023 American Chemical Society

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    Supporting Information

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    The Supporting Information is available free of charge at https://pubs.acs.org/doi/10.1021/acs.jpca.3c00766.

    • Complementary potential energy profiles computed at SF-TD-DFT, MR-SF-TD-DFT, MS-CASPT2, MS-RASPT2, and CASSCF levels and S0/S1 MECI branching space and optimized Cartesian coordinates (PDF)

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    This article is cited by 3 publications.

    1. Xin Sun, Ran Liu, Sneha Kandapal, Bingqian Xu. Development and mechanisms of photo-induced molecule junction device. Nanophotonics 2024, 13 (9) , 1535-1560. https://doi.org/10.1515/nanoph-2023-0921
    2. Sheelbhadra Chatterjee, Sariful Molla, Jakir Ahmed, Subhajit Bandyopadhyay. Light-driven modulation of electrical conductance with photochromic switches: bridging photochemistry with optoelectronics. Chemical Communications 2023, 59 (85) , 12685-12698. https://doi.org/10.1039/D3CC04269C
    3. David Jago, Emma E. Gaschk, George A. Koutsantonis, . History and fundamentals of molecular photochromism. Australian Journal of Chemistry 2023, 76 (10) , 635-654. https://doi.org/10.1071/CH23115

    The Journal of Physical Chemistry A

    Cite this: J. Phys. Chem. A 2023, 127, 13, 2921–2935
    Click to copy citationCitation copied!
    https://doi.org/10.1021/acs.jpca.3c00766
    Published March 28, 2023
    Copyright © 2023 American Chemical Society

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