Published December 22, 2020 | Version v1
Dataset Open

New Generation UV-A Filters: Understanding Their Photodynamics on a Human Skin Mimic

  • 1. Department of Chemistry, University of Warwick, Gibbet Hill Road, Coventry, CV4 7AL
  • 2. School of Electrical and Electronic Engineering, University of Leeds, Leeds, LS2 9JT
  • 3. Aix Marseille University, CNRS, ICR, Marseille, France
  • 4. URD Agro-Biotechnologies (ABI), CEBB, AgroParisTech, 51110, Pomacle, France
  • 5. IRCM, Inserm, Univ. Montpellier, ICM, Montpellier, France

Description

The sparsity of efficient commercial ultraviolet-A (UV-A) filters is a major challenge towards 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 non-radiative 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 towards 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.

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10mM_CMe_CCT_Chirp_Corrected.csv

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Additional details

Funding

Ultrafast Spectroscopy of Advanced Materials at the University of Warwick EP/N010825/1
UK Research and Innovation
BoostCrop – Boosting Crop Growth using Natural Product and Synthesis Enabled Solar Harvesting 828753
European Commission