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The Tandem Photoredox Catalysis Mechanism of [Ir(ppy)(2)(dtb-bpy)](+) Enabling Access to Energy Demanding Organic Substrates

journal contribution
posted on 2024-11-02, 10:38 authored by Tim ConnellTim Connell, Catherine Fraser, Milena Czyz, Zoe Smith, David Hayne, Egan Doeven, Johnny Agugiaro, David Wilson, Jacqui Adcock, Andrew Scully, Daniel Gomez AlviarezDaniel Gomez Alviarez, Neil Barnett, Anastasios Polyzos, Paul Francis
We report the discovery of a tandem catalytic process to reduce energy demanding substrates, using the [Ir(ppy)2(dtb-bpy)]+ (1+) photocatalyst. The immediate products of photoinitiated electron transfer (PET) between 1+ and triethylamine (TEA) undergo subsequent reactions to generate a previously unknown, highly reducing species (2). Formation of 2 occurs via reduction and semisaturation of the ancillary dtb-bpy ligand, where the TEA radical cation serves as an effective hydrogen atom donor, confirmed by nuclear magnetic resonance, mass spectrometry, and deuterium labeling experiments. Steady-state and time-resolved luminescence and absorption studies reveal that upon irradiation, 2 undergoes electron transfer or proton-coupled electron transfer (PCET) with a representative acceptor (N-(diphenylmethylene)-1-phenylmethanamine; S). Turnover of this new photocatalytic cycle occurs along with the reformation of 1+. We rationalize our observations by proposing the first example of a mechanistic pathway where two distinct yet interconnected photoredox cycles provide access to an extended reduction potential window capable of engaging a wide range of energy demanding and synthetically relevant organic substrates including aryl halides.

Funding

Multi-Colour Electrogenerated Chemiluminescence

Australian Research Council

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Plasmonic Photochemistry: A nanoscopic solution to global energy and environmental problems

Australian Research Council

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ARC Training Centre for the Chemical Industries

Australian Research Council

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History

Journal

Journal of the American Chemical Society

Volume

141

Issue

44

Start page

17646

End page

17658

Total pages

13

Publisher

American Chemical Society

Place published

United States

Language

English

Copyright

© 2019 American Chemical Society.

Former Identifier

2006095831

Esploro creation date

2020-06-22

Fedora creation date

2019-12-18

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