Literature DB >> 29068156

Ruthenium Water Oxidation Catalysts based on Pentapyridyl Ligands.

Marcos Gil-Sepulcre1,2, Michael Böhler3, Mauro Schilling3, Fernando Bozoglian1, Cyril Bachmann3, Dominik Scherrer3, Thomas Fox3, Bernhard Spingler3, Carolina Gimbert-Suriñach1, Roger Alberto3, Roger Bofill2, Xavier Sala2, Sandra Luber3, Craig J Richmond3, Antoni Llobet1,2.   

Abstract

Ruthenium complexes containing the pentapyridyl ligand 6,6''-(methoxy(pyridin-2-yl)methylene)di-2,2'-bipyridine (L-OMe) of general formula trans-[RuII (X)(L-OMe-κ-N5 )]n+ (X=Cl, n=1, trans-1+ ; X=H2 O, n=2, trans-22+ ) have been isolated and characterized in solution (by NMR and UV/Vis spectroscopy) and in the solid state by XRD. Both complexes undergo a series of substitution reactions at oxidation state RuII and RuIII when dissolved in aqueous triflic acid-trifluoroethanol solutions as monitored by UV/Vis spectroscopy, and the corresponding rate constants were determined. In particular, aqueous solutions of the RuIII -Cl complex trans-[RuIII (Cl)(L-OMe-κ-N5 )]2+ (trans-12+ ) generates a family of Ru aquo complexes, namely trans-[RuIII (H2 O)(L-OMe-κ-N5 )]3+ (trans-23+ ), [RuIII (H2 O)2 (L-OMe-κ-N4 )]3+ (trans-33+ ), and [RuIII (Cl)(H2 O)(L-OMe-κ-N4 )]2+ (trans-42+ ). Although complex trans-42+ is a powerful water oxidation catalyst, complex trans-23+ has only a moderate activity and trans-33+ shows no activity. A parallel study with related complexes containing the methyl-substituted ligand 6,6''-(1-pyridin-2-yl)ethane-1,1-diyl)di-2,2'-bipyridine (L-Me) was carried out. The behavior of all of these catalysts has been rationalized based on substitution kinetics, oxygen evolution kinetics, electrochemical properties, and density functional theory calculations. The best catalyst, trans-42+ , reaches turnover frequencies of 0.71 s-1 using CeIV as a sacrificial oxidant, with oxidative efficiencies above 95 %.
© 2017 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  kinetics; pentapyridyl ligand; ruthenium complexes; substitution reactions; water oxidation catalysis

Year:  2017        PMID: 29068156     DOI: 10.1002/cssc.201701747

Source DB:  PubMed          Journal:  ChemSusChem        ISSN: 1864-5631            Impact factor:   8.928


  3 in total

1.  Water-Assisted Chemical Route Towards the Oxygen Evolution Reaction at the Hydrated (110) Ruthenium Oxide Surface: Heterogeneous Catalysis via DFT-MD and Metadynamics Simulations.

Authors:  Fabrizio Creazzo; Sandra Luber
Journal:  Chemistry       Date:  2021-10-15       Impact factor: 5.020

2.  Optical Properties of Isolated and Covalent Organic Framework-Embedded Ruthenium Complexes.

Authors:  Francesco Muniz-Miranda; Liesbeth De Bruecker; Arthur De Vos; Flore Vanden Bussche; Christian V Stevens; Pascal Van Der Voort; Kurt Lejaeghere; Veronique Van Speybroeck
Journal:  J Phys Chem A       Date:  2019-08-01       Impact factor: 2.781

Review 3.  Computational Modeling of Cobalt-Based Water Oxidation: Current Status and Future Challenges.

Authors:  Mauro Schilling; Sandra Luber
Journal:  Front Chem       Date:  2018-04-18       Impact factor: 5.221

  3 in total

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