Reaction progress kinetic analysis as tool to reveal ligand effects in Ce(IV)-driven IrCp* catalyzed water oxidation
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2016
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taverne
Abstract
A series of iridium-based complexes have been evaluated in Ce(IV)-driven water oxidation catalysis. Detailed kinetic data have been obtained from UV–vis stopped-flow experiments, and these data have been analyzed using reaction progress kinetic analysis. The graphical plots show that there are three clear phases in the reaction: catalyst activation, water oxidation catalysis, and cerium concentration controlled catalysis at the end of the reaction. The ligand attached to the IrCp* complex has a clear influence on both the activation as well as the catalysis. Some bidentate ligands result in relatively slow catalysis, and the first-order in iridium supports the presence of mononuclear active species; however, other bidentates form the more active dinuclear species. Monodentate ligands allow the formation of bis-μ-oxo bridged dimeric species, supported by kinetics displaying 1.6-order in [Ir], leading to high reaction rates.
Keywords
water splitting, homogeneous catalysis, water oxidation, iridium, reaction progress kinetic analysis, Taverne, SDG 7 - Affordable and Clean Energy
Citation
Koelewijn, J M, Lutz, M, Dzik, W I, Detz, R J & Reek, J N H 2016, 'Reaction progress kinetic analysis as tool to reveal ligand effects in Ce(IV)-driven IrCp* catalyzed water oxidation', ACS Catalysis, vol. 6, pp. 3418-3427. https://doi.org/10.1021/acscatal.6b00297