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One- and two-photon absorption properties of quadrupolar thiophene-based dyes with acceptors of varying strengths

Authors :
Paola Ceroni
Sofia Canola
Fabrizia Negri
Francesca Di Maria
Giacomo Bergamini
Sergei A. Vinogradov
Angela Acocella
Marco Villa
Luca Ravotto
Lorenzo Mardegan
Mattia Zangoli
Canola S.
Mardegan L.
Bergamini G.
Villa M.
Acocella A.
Zangoli M.
Ravotto L.
Vinogradov S.A.
Di Maria F.
Ceroni P.
Negri F.
Source :
Photochemical & photobiological sciences, 18 (2019): 2180–2190. doi:10.1039/c9pp00006b, info:cnr-pdr/source/autori:Canola S.; Mardegan L.; Bergamini G.; Villa M.; Acocella A.; Zangoli M.; Ravotto L.; Vinogradov S.A.; Di Maria F.; Ceroni P.; Negri F./titolo:One-and two-photon absorption properties of quadrupolar thiophene-based dyes with acceptors of varying strengths/doi:10.1039%2Fc9pp00006b/rivista:Photochemical & photobiological sciences (Print)/anno:2019/pagina_da:2180/pagina_a:2190/intervallo_pagine:2180–2190/volume:18, Photochem Photobiol Sci
Publication Year :
2019
Publisher :
Springer Science and Business Media LLC, 2019.

Abstract

The one-photon (1P) and two-photon (2P) absorption properties of three quadrupolar dyes, featuring thiophene as a donor and acceptors of varying strengths, are determined by a combination of experimental and computational methods employing the density functional theory (DFT). The emission shifts in different solvents are well reproduced by time-dependent DFT calculations with the linear response and state specific approaches in the framework of the polarizable continuum model. The calculations show that the energies of both 1P- and 2P-active states decrease with an increase of the strength of the acceptor. The 2P absorption cross-sections predicted by the response theory are accounted for by considering just one intermediate state (S1) in the sum-over-states formulation. For the chromophore featuring the stronger acceptor, the energetic positions of the 1P- and 2P-active states prevent the exploitation of the theoretically predicted very high 2P activity due to the competing 1P absorption into the S1 state.

Details

ISSN :
14749092 and 1474905X
Volume :
18
Database :
OpenAIRE
Journal :
Photochemical & Photobiological Sciences
Accession number :
edsair.doi.dedup.....661a8641cbd1112a411bff814d0d2228