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Solvent and alkyl substitution effects on charge-transfer mediated triplet state generation in BODIPY dyads: a combined computational and experimental study.
Dai, Yasi; Dellai, Angela; Bassan, Elena; Bellatreccia, Caterina; Gualandi, Andrea; Anselmi, Michele; Cozzi, Pier Giorgio; Ceroni, Paola; Negri, Fabrizia.
Affiliation
  • Dai Y; Department of Chemistry Giacomo Ciamician, University of Bologna, Bologna, Italy.
  • Dellai A; Center for Chemical Catalysis-C3, Alma Mater Studiorum-Università di Bologna, Via Selmi 2, 40126, Bologna, Italy.
  • Bassan E; Department of Chemistry Giacomo Ciamician, University of Bologna, Bologna, Italy.
  • Bellatreccia C; Department of Chemistry Giacomo Ciamician, University of Bologna, Bologna, Italy.
  • Gualandi A; Center for Chemical Catalysis-C3, Alma Mater Studiorum-Università di Bologna, Via Selmi 2, 40126, Bologna, Italy.
  • Anselmi M; Department of Chemistry Giacomo Ciamician, University of Bologna, Bologna, Italy.
  • Cozzi PG; Center for Chemical Catalysis-C3, Alma Mater Studiorum-Università di Bologna, Via Selmi 2, 40126, Bologna, Italy.
  • Ceroni P; Department of Chemistry Giacomo Ciamician, University of Bologna, Bologna, Italy.
  • Negri F; Center for Chemical Catalysis-C3, Alma Mater Studiorum-Università di Bologna, Via Selmi 2, 40126, Bologna, Italy.
Photochem Photobiol Sci ; 23(3): 451-462, 2024 Mar.
Article in En | MEDLINE | ID: mdl-38324165
ABSTRACT
Donor-acceptor dyads based on BODIPYs have been recently employed to enhance the formation of triplet excited states with the process of spin-orbit charge transfer intersystem crossing (SOCT-ISC) which does not require introduction of transition metals or other heavy atoms into the molecule. In this work we compare two donor-acceptor dyads based on meso-naphthalenyl BODIPY by combining experimental and computational investigations. The photophysical and electrochemical characterization reveals a significant effect of alkylation of the BODIPY core, disfavoring the SOCT-ISC mechanism for the ethylated BODIPY dyad. This is complemented with a computational investigation carried out to rationalize the influence of ethyl substituents and solvent effects on the electronic structure and efficiency of triplet state population via charge recombination (CR) from the photoinduced electron transfer (PeT) generated charge-transfer (CT) state. Time dependent-density functional theory (TD-DFT) calculations including solvent effects and spin-orbit coupling (SOC) calculations uncover the combined role played by solvent and alkyl substitution on the lateral positions of BODIPY.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Photochem Photobiol Sci Journal subject: BIOLOGIA / QUIMICA Year: 2024 Type: Article Affiliation country: Italy

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Photochem Photobiol Sci Journal subject: BIOLOGIA / QUIMICA Year: 2024 Type: Article Affiliation country: Italy