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  • Efficient Light-Driven Water Oxidation Catalysis by Dinuclear Ruthenium Complexes.

Efficient Light-Driven Water Oxidation Catalysis by Dinuclear Ruthenium Complexes.

ChemSusChem (2015-10-02)
Serena Berardi, Laia Francàs, Sven Neudeck, Somnath Maji, Jordi Benet-Buchholz, Franc Meyer, Antoni Llobet
ABSTRACT

Mastering the light-induced four-electron oxidation of water to molecular oxygen is a key step towards the achievement of overall water splitting to produce alternative solar fuels. In this work, we report two rugged molecular pyrazolate-based diruthenium complexes that efficiently catalyze visible-light-driven water oxidation. These complexes were fully characterized both in the solid state (by X-ray diffraction analysis) and in solution (spectroscopically and electrochemically). Benchmark performances for homogeneous oxygen production have been obtained for both catalysts in the presence of a photosensitizer and a sacrificial electron acceptor at pH 7, and a turnover frequency of up to 11.1 s(-1) and a turnover number of 5300 were obtained after three successive catalytic runs. Under the same experimental conditions with the same setup, the pyrazolate-based diruthenium complexes outperform other well-known water oxidation catalysts owing to both electrochemical and mechanistic aspects.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
Sodium sulfate, ACS reagent, ≥99.0%, anhydrous, granular
Sigma-Aldrich
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Sigma-Aldrich
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Isonicotinic acid, 99%
Sigma-Aldrich
Hydriodic acid, contains no stabilizer, distilled, 57 wt. % in H2O, 99.99% trace metals basis
Sigma-Aldrich
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