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How Dispersion Interactions at the Excited State Can Tune Photochromism of Embedded Chromophores

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Abstract

We present QM/MMPol-cLR3, a polarizable embedding quantum mechanics/molecular mechanics (QM/MM) framework that includes explicit, state-specific dispersion terms. This method enables a rigorous treatment of dispersion on top of electrostatic and induction effects in ground- and excited-state calculations. Using QM/MMPol-cLR3, we show that dispersion interactions control excited-state solvatochromism through two distinct mechanisms. In azulene, opposite shifts of the La and Lb states arise from state-specific dispersion linked to changes in excited-state polarizability. In bacteriochlorophyll a, dispersion instead stems from the interplay between polarizability changes and transition-dipole-driven response, governing the Qy and Qx shifts. Finally, application to the LH2 complex reveals pigment-dependent dispersion shifts between the B800 and B850 rings, impacting the excitation-energy transfer. These results establish dispersion as an essential, nonempirical component for predictive excited-state simulations in complex environments.
Lingua originaleInglese
pagine (da-a)1847-1857
Numero di pagine11
RivistaJournal of the American Chemical Society
Volume148
Numero di pubblicazione1
DOI
Stato di pubblicazionePubblicato - 2026

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Questo processo contribuisce al raggiungimento dei seguenti obiettivi di sviluppo sostenibile

  1. SDG 7 - Energia pulita e accessibile
    SDG 7 Energia pulita e accessibile

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