| Literature DB >> 29052339 |
Stephan Schnidrig1, Cyril Bachmann1, Peter Müller1, Nicola Weder1, Bernhard Spingler1, Evelyne Joliat-Wick1, Mathias Mosberger1, Johannes Windisch1, Roger Alberto1, Benjamin Probst1.
Abstract
A series of eight new and three known cobalt polypyridyl-based hydrogen-evolving catalysts (HECs) with distinct electronic and structural differences are benchmarked in photocatalytic runs in water. Methylene-bridged bis-bipyridyl is the preferred scaffold, both in terms of stability and rate. For a cobalt complex of the tetradentate methanol-bridged bispyridyl-bipyridyl complex [CoII Br(tpy)]Br, a detailed mechanistic picture is obtained by combining electrochemistry, spectroscopy, and photocatalysis. In the acidic branch, a proton-coupled electron transfer, assigned to formation of CoIII -H, is found upon reduction of CoII , in line with a pKa (CoIII -H) of approximately 7.25. Subsequent reduction (-0.94 V vs. NHE) and protonation close the catalytic cycle. Methoxy substitution on the bipyridyl scaffold results in the expected cathodic shift of the reduction, but fails to change the pKa (CoIII -H). An analysis of the outcome of the benchmarking in view of this postulated mechanism is given along with an outlook for design criteria for new generations of catalysts.Entities:
Keywords: artifical photosynthesis; cobalt; photocatalysis; solar fuels; structure-activity
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Year: 2017 PMID: 29052339 DOI: 10.1002/cssc.201701511
Source DB: PubMed Journal: ChemSusChem ISSN: 1864-5631 Impact factor: 8.928