Hierarchical Corannulene-Based Materials: Energy Transfer and Solid-State Photophysics.
Allison M RiceW Brett FellowsEkaterina A DolgopolovaAndrew B GreytakAaron K VannucciMark D SmithStavros G KarakalosJeanette A KrauseStanislav M AvdoshenkoAlexey A PopovNatalia B ShustovaPublished in: Angewandte Chemie (International ed. in English) (2017)
We report the first example of a donor-acceptor corannulene-containing hybrid material with rapid ligand-to-ligand energy transfer (ET). Additionally, we provide the first time-resolved photoluminescence (PL) data for any corannulene-based compounds in the solid state. Comprehensive analysis of PL data in combination with theoretical calculations of donor-acceptor exciton coupling was employed to estimate ET rate and efficiency in the prepared material. The ligand-to-ligand ET rate calculated using two models is comparable with that observed in fullerene-containing materials, which are generally considered for molecular electronics development. Thus, the presented studies not only demonstrate the possibility of merging the intrinsic properties of π-bowls, specifically corannulene derivatives, with the versatility of crystalline hybrid scaffolds, but could also foreshadow the engineering of a novel class of hierarchical corannulene-based hybrid materials for optoelectronic devices.