Literature DB >> 24513677

Ultrafast resonance energy transfer in the umbelliferone-alizarin bichromophore.

Andrea Lapini1, Pierangelo Fabbrizzi, Matteo Piccardo, Mariangela di Donato, Luisa Lascialfari, Paolo Foggi, Stefano Cicchi, Malgorzata Biczysko, Ivan Carnimeo, Fabrizio Santoro, Chiara Cappelli, Roberto Righini.   

Abstract

In this work we present the synthesis, time-resolved spectroscopic characterization and computational analysis of a bichromophore composed of two very well-known naturally occurring dyes: 7-hydroxycoumarin (umbelliferone) and 1,2-dihydroxyanthraquinone (alizarin). The umbelliferone donor (Dn) and alizarin acceptor (Ac) moieties are linked to a triazole ring viaσ bonds, providing a flexible structure. By measuring the fluorescence quantum yields and the ultrafast transient absorption spectra we demonstrate the high efficiency (∼85%) and the fast nature (∼1.5 ps) of the energy transfer in this compound. Quantum chemical calculations, within the density functional theory (DFT) approach, are used to characterize the electronic structure of the bichromophore (Bi) in the ground and excited states. We simulate the absorption and fluorescence spectra using the TD-DFT methods and the vertical gradient approach (VG), and include the solvent effects by adopting the conductor-like polarizable continuum model (CPCM). The calculated electronic structure suggests the occurrence of weak interactions between the electron densities of Dn and Ac in the excited state, indicating that the Förster-type transfer is the appropriate model for describing the energy transfer in this system. The average distance between Dn and Ac moieties calculated from the conformational analysis (12 Å) is in very good agreement with the value estimated from the Förster equation (∼11 Å). At the same time, the calculated rate constant for energy transfer, averaged over multiple conformations of the system (3.6 ps), is in reasonable agreement with the experimental value (1.6 ps) estimated by transient absorption spectroscopy. The agreement between experimental results and computational data leads us to conclude that the energy transfer in Bi is well described by the Förster mechanism.

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Year:  2014        PMID: 24513677     DOI: 10.1039/c3cp54609h

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  2 in total

1.  Asymmetrically bridged aroyl-S,N-ketene acetal-based multichromophores with aggregation-induced tunable emission.

Authors:  Lukas Biesen; Julius Krenzer; Nithiya Nirmalananthan-Budau; Ute Resch-Genger; Thomas J J Müller
Journal:  Chem Sci       Date:  2022-04-12       Impact factor: 9.969

2.  Diversity-Oriented Synthesis and Optical Properties of Bichromophoric Pyrrole-Fluorophore Conjugates.

Authors:  Oliver Grotkopp; Bernhard Mayer; Thomas J J Müller
Journal:  Front Chem       Date:  2018-11-27       Impact factor: 5.221

  2 in total

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