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Photoredox Catalysis in Organic Chemistry

The Journal of Organic Chemistry · 2016 · Vol. 81(16) · pp. 6898–6926
Megan H. ShawJack TwiltonDavid W. C. MacMillan

Abstract

In recent years, photoredox catalysis has come to the forefront in organic chemistry as a powerful strategy for the activation of small molecules. In a general sense, these approaches rely on the ability of metal complexes and organic dyes to convert visible light into chemical energy by engaging in single-electron transfer with organic substrates, thereby generating reactive intermediates. In this Perspective, we highlight the unique ability of photoredox catalysis to expedite the development of completely new reaction mechanisms, with particular emphasis placed on multicatalytic strategies that enable the construction of challenging carbon-carbon and carbon-heteroatom bonds.

Radical Photochemical ReactionsSulfur-Based Synthesis TechniquesCatalytic C–H Functionalization MethodsPhotoredox catalysisChemistryCatalysisOrganic synthesisHeteroatomCarbon fibersElectron transferOrganic moleculesReactive intermediateNanotechnology

Funding

  • National Institute of General Medical Sciences
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3,057
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References
Palladium‐Catalyzed Cross‐Coupling: A Historical Contextual Perspective to the 2010 Nobel Prize
Angewandte Chemie International Edition · 2012 · 2,922 citations
Towards mild metal-catalyzed C–H bond activation
Chemical Society Reviews · 2011 · 2,438 citations
Visible light photoredox catalysis: applications in organic synthesis
Chemical Society Reviews · 2010 · 4,059 citations
Chemical approaches to artificial photosynthesis
Accounts of Chemical Research · 1989 · 1,347 citations
Visible‐Light Photoredox Catalysis
Angewandte Chemie International Edition · 2012 · 2,216 citations
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