| Literature DB >> 33353308 |
Temitope T Abiola, Natércia D N Rodrigues, Casey Ho, Daniel J L Coxon1, Michael D Horbury2, Josene M Toldo3, Mariana T do Casal3, Benjamin Rioux4, Cédric Peyrot4, Matthieu M Mention4, Patrick Balaguer5, Mario Barbatti3, Florent Allais4, Vasilios G Stavros.
Abstract
The sparsity of efficient commercial ultraviolet-A (UV-A) filters is a major challenge toward developing effective broadband sunscreens with minimal human- and eco-toxicity. To combat this, we have designed a new class of Meldrum-based phenolic UV-A filters. We explore the ultrafast photodynamics of coumaryl Meldrum, CMe, and sinapyl Meldrum (SMe), both in an industry-standard emollient and on a synthetic skin mimic, using femtosecond transient electronic and vibrational absorption spectroscopies and computational simulations. Upon photoexcitation to the lowest excited singlet state (S1), these Meldrum-based phenolics undergo fast and efficient nonradiative decay to repopulate the electronic ground state (S0). We propose an initial ultrafast twisted intramolecular charge-transfer mechanism as these systems evolve out of the Franck-Condon region toward an S1/S0 conical intersection, followed by internal conversion to S0 and subsequent vibrational cooling. Importantly, we correlate these findings to their long-term photostability upon irradiation with a solar simulator and conclude that these molecules surpass the basic requirements of an industry-standard UV filter.Entities:
Year: 2020 PMID: 33353308 DOI: 10.1021/acs.jpclett.0c03004
Source DB: PubMed Journal: J Phys Chem Lett ISSN: 1948-7185 Impact factor: 6.475