Mechanistic investigation of a visible light mediated dehalogenation/cyclisation reaction using iron(iii), iridium(iii) and ruthenium(ii) photosensitizers

  • Akin Aydogan
  • , Rachel E. Bangle
  • , Simon De Kreijger
  • , John C. Dickenson
  • , Michael L. Singleton
  • , Emilie Cauët
  • , Alejandro Cadranel
  • , Gerald J. Meyer
  • , Benjamin Elias
  • , Renato N. Sampaio
  • , Ludovic Troian-Gautier

Research output: Contribution to journalArticlepeer-review

Abstract

The mechanism of a visible light-driven dehalogenation/cyclization reaction was investigated using ruthenium(ii), iridium(iii) and iron(iii) photosensitizers by means of steady-state photoluminescence, time-resolved infrared spectroscopy, and nanosecond/femtosecond transient absorption spectroscopy. The nature of the photosensitizer was found to influence the product distribution such that the dehalogenated, non-cyclized products were only detected for the iron photosensitizer. Strikingly, with the iron photosensitizer, large catalytic yields required a low dielectric solvent such as dichloromethane, consistent with a previous publication. This low dielectric solvent allowed ultrafast charge-separation to outcompete geminate charge recombination and improved cage escape efficiency. Further, the identification of reaction mechanisms unique to the iron, ruthenium, and iridium photosensitizer represents progress towards the long-sought goal of utilizing earth-abundant, first-row transition metals for emerging energy and environmental applications.
Original languageEnglish
Pages (from-to)8037-8051
Number of pages15
JournalCatalysis Science and Technology
Volume11
Issue number24
DOIs
StatePublished - Dec 21 2021

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