| Literature DB >> 23869825 |
Kenneth P Ghiggino1, Neeraj Kumar Giri, Jordan Hanrieder, Jonathon D Martell, Jens Müller, Matthew F Paige, Benjamin Robotham, Jędrzej Szmytkowski, Ronald P Steer.
Abstract
The photophysics of low-chlorin tin(IV) tetraphenylporphyrin dihydroxide, a core building block for axially substituted supramolecular tin porphyrin constructs, has been studied in a variety of hydrogen-bonding, nonpolar, and aprotic polar solvents using steady-state, nanosecond, and femtosecond time-resolved emission, and femtosecond time-resolved absorption methods. In hydrogen-bonding solvents the metalloporphyrin exists as solvated monomers, and its Soret-excited S2 state in these solvents exhibits the expected linear energy gap law relationship with first-order population decay times in the 0.8 to 1.7 ps range. Evidence is presented that this metalloporphyrin aggregates in other solvents at the concentrations typically used for these ultrafast measurements and yields species-averaged time-resolved data. Cw laser excitation in the Q-band under deaerated conditions produces weak S2-S0 fluorescence (photon upconversion) as a result of triplet-triplet annihilation.Entities:
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Year: 2013 PMID: 23869825 DOI: 10.1021/jp406025j
Source DB: PubMed Journal: J Phys Chem A ISSN: 1089-5639 Impact factor: 2.781