| Literature DB >> 31314499 |
Michael G S Londesborough1, Jiří Dolanský1, Jonathan Bould1, Jakub Braborec1, Kaplan Kirakci1, Kamil Lang1, Ivana Císařová2, Pavel Kubát3, Daniel Roca-Sanjuán4, Antonio Francés-Monerris5, Lenka Slušná6, Eva Noskovičová6, Dušan Lorenc7.
Abstract
Treatment of the laser borane anti-B18H22 (compound 1) with iodine in ethanol gives the monoiodinated derivative 7-I-anti-B18H21 (compound 2) in 67% yield, or, by reaction with iodine or ICl in the presence of AlCl3 in dichloromethane, the diiodinated derivative 4,4'-I2-anti-B18H20 (compound 3) in 85% yield. On excitation with 360 nm light, both compounds 2 and 3 give strong green phosphorescent emissions (λmax = 525 nm, ΦL = 0.41 and λmax = 545 nm, ΦL = 0.71 respectively) that are quenched by dioxygen to produce O2(1Δg) singlet oxygen with quantum yields of ΦΔ = 0.52 and 0.36 respectively. Similarly strong emissions can be stimulated via the nonlinear process of two-photon absorption when exciting with 720 or 800 nm light. The high quantum yields of singlet-oxygen production, coupled with the option of two-photon excitation, make compounds 2 and 3 promising O2(1Δg) photosensitizers. The molecular structures of compounds 2 and 3 were determined by single-crystal X-ray crystallographic studies as well as multinuclear NMR spectroscopy and mass spectrometry. Time-resolved UV-vis spectroscopy was used to delineate their photophysical properties, and the electronic-structure properties of the emitting species were determined by means of multiconfigurational quantum-chemistry computations.Entities:
Year: 2019 PMID: 31314499 DOI: 10.1021/acs.inorgchem.9b01358
Source DB: PubMed Journal: Inorg Chem ISSN: 0020-1669 Impact factor: 5.165