Literature DB >> 16190735

Electrochemical and chemical formation of [Mn4(IV)O5(terpy)4(H2O)2]6+, in relation with the photosystem II oxygen-evolving center model [Mn2(III,IV)O2(terpy)2(H2O)2]3+.

Carole Baffert1, Sophie Romain, Aurélien Richardot, Jean-Claude Leprêtre, Bertrand Lefebvre, Alain Deronzier, Marie-Noëlle Collomb.   

Abstract

To examine the real ability of the binuclear di-mu-oxo complex [Mn2(III,IV)O2(terpy)2(H2O)2]3+ (2) to act as a catalyst for water oxidation, we have investigated in detail its redox properties and that of its mononuclear precursor complex [Mn(II)(terpy)2]2+ (1) in aqueous solution. It appears that electrochemical oxidation of 1 allows the quantitative formation of 2 and, most importantly, that electrochemical oxidation of 2 quantitatively yields the stable tetranuclear Mn(IV) complex, [Mn4(IV)O5(terpy)4(H2O)2]6+ (4), having a linear mono-mu-oxo{Mn2(mu-oxo)2}2 core. Therefore, these results show that the electrochemical oxidation of 2 in aqueous solution is only a one-electron process leading to 4 via the formation of a mono-mu-oxo bridge between two oxidized [Mn2(IV,IV)O2(terpy)2(H2O)2]4+ species. 4 is also quantitatively formed by dissolution of the binuclear complex [Mn2(IV,IV)O2(terpy)2(SO4)2] (3) in aqueous solutions. Evidence of this work is that 4 is stable in aqueous solutions, and even if it is a good synthetic analogue of the "dimers-of-dimers" model compound of the OEC in PSII, this complex is not able to oxidize water. As a consequence, since 4 results from an one-electron oxidation of 2, 2 cannot act as an efficient homogeneous electrocatalyst for water oxidation. This work demonstrates that a simple oxidation of 2 cannot produce molecular oxygen without the help of an oxygen donor.

Entities:  

Year:  2005        PMID: 16190735     DOI: 10.1021/ja052595+

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  6 in total

1.  [(H2O)(terpy)Mn(mu-O)2Mn(terpy)(OH2)](NO3)3 (terpy = 2,2':6,2''-terpyridine) and its relevance to the oxygen-evolving complex of photosystem II examined through pH dependent cyclic voltammetry.

Authors:  Clyde W Cady; Katherine E Shinopoulos; Robert H Crabtree; Gary W Brudvig
Journal:  Dalton Trans       Date:  2010-03-17       Impact factor: 4.390

2.  Functional Models for the Oxygen-Evolving Complex of Photosystem II.

Authors:  Clyde W Cady; Robert H Crabtree; Gary W Brudvig
Journal:  Coord Chem Rev       Date:  2008-02-01       Impact factor: 22.315

3.  Study of Proton Coupled Electron Transfer in a Biomimetic Dimanganese Water Oxidation Catalyst with Terminal Water Ligands.

Authors:  Ting Wang; Gary W Brudvig; Victor S Batista
Journal:  J Chem Theory Comput       Date:  2010-08-10       Impact factor: 6.006

4.  Molecular recognition in Mn-catalyzed C-H oxidation. Reaction mechanism and origin of selectivity from a DFT perspective.

Authors:  David Balcells; Pamela Moles; James D Blakemore; Christophe Raynaud; Gary W Brudvig; Robert H Crabtree; Odile Eisenstein
Journal:  Dalton Trans       Date:  2009-06-17       Impact factor: 4.390

5.  Reflections on Small Molecule Manganese Models that Seek to Mimic Photosynthetic Water Oxidation Chemistry.

Authors:  Christopher S Mullins; Vincent L Pecoraro
Journal:  Coord Chem Rev       Date:  2008-02       Impact factor: 22.315

6.  Homogenous Water Oxidation by a Di-μ-Oxo Dimanganese Complex in the Presence of Ce.

Authors:  Ranitendranath Tagore; Hongyu Chen; Hong Zhang; Robert H Crabtree; Gary W Brudvig
Journal:  Inorganica Chim Acta       Date:  2007-06-10       Impact factor: 2.545

  6 in total

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