Literature DB >> 21875042

Geometric and electronic structures of peroxomanganese(III) complexes supported by pentadentate amino-pyridine and -imidazole ligands.

Robert A Geiger1, Domenick F Leto, Swarup Chattopadhyay, Pierre Dorlet, Elodie Anxolabéhère-Mallart, Timothy A Jackson.   

Abstract

Three peroxomanganese(III) complexes [Mn(III)(O(2))(mL(5)(2))](+), [Mn(III)(O(2))(imL(5)(2))](+), and [Mn(III)(O(2))(N4py)](+) supported by pentadentate ligands (mL(5)(2) = N-methyl-N,N',N'-tris(2-pyridylmethyl)ethane-1,2-diamine, imL(5)(2) = N-methyl-N,N',N'-tris((1-methyl-4-imidazolyl)methyl)ethane-1,2-diamine, and N4py = N,N-bis(2-pyridylmethyl)-N-bis(2-pyridyl)methylamine) were generated by treating Mn(II) precursors with H(2)O(2) or KO(2). Electronic absorption, magnetic circular dichroism (MCD), and variable-temperature, variable-field MCD data demonstrate that these complexes have very similar electronic transition energies and ground-state zero-field splitting parameters, indicative of nearly identical coordination geometries. Because of uncertainty in peroxo (side-on η(2) versus end-on η(1)) and ligand (pentadentate versus tetradentate) binding modes, density functional theory (DFT) computations were used to distinguish between three possible structures: pentadentate ligand binding with (i) a side-on peroxo and (ii) an end-on peroxo, and (iii) tetradentate ligand binding with a side-on peroxo. Regardless of the supporting ligand, isomers with a side-on peroxo and the supporting ligand bound in a tetradentate fashion were identified as most stable by >20 kcal/mol. Spectroscopic parameters computed by time-dependent (TD) DFT and multireference SORCI methods provided validation of these isomers on the basis of experimental data. Hexacoordination is thus strongly preferred for peroxomanganese(III) adducts, and dissociation of a pyridine (mL(5)(2) and N4py) or imidazole (imL(5)(2)) arm is thermodynamically favored. In contrast, DFT computations for models of [Fe(III)(O(2))(mL(5)(2))](+) demonstrate that pyridine dissociation is not favorable; instead a seven-coordinate ferric center is preferred. These different results are attributed to the electronic configurations of the metal centers (high spin d(5) and d(4) for Fe(III) and Mn(III), respectively), which results in population of a metal-peroxo σ-antibonding molecular orbital and, consequently, longer M-O(peroxo) bonds for peroxoiron(III) species.

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Year:  2011        PMID: 21875042     DOI: 10.1021/ic201168j

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  10 in total

Review 1.  Peroxomanganese complexes as an aid to understanding redox-active manganese enzymes.

Authors:  Domenick F Leto; Timothy A Jackson
Journal:  J Biol Inorg Chem       Date:  2013-11-27       Impact factor: 3.358

2.  Correlation between structural, spectroscopic, and reactivity properties within a series of structurally analogous metastable manganese(III)-alkylperoxo complexes.

Authors:  Michael K Coggins; Vlad Martin-Diaconescu; Serena DeBeer; Julie A Kovacs
Journal:  J Am Chem Soc       Date:  2013-03-12       Impact factor: 15.419

3.  Geometric and electronic structure of a peroxomanganese(III) complex supported by a scorpionate ligand.

Authors:  Hannah E Colmer; Robert A Geiger; Domenick F Leto; Gayan B Wijeratne; Victor W Day; Timothy A Jackson
Journal:  Dalton Trans       Date:  2014-10-14       Impact factor: 4.390

4.  Geometric and electronic structure of a crystallographically characterized thiolate-ligated binuclear peroxo-bridged cobalt(III) complex.

Authors:  Maksym A Dedushko; Dirk Schweitzer; Maike N Blakely; Rodney D Swartz; Werner Kaminsky; Julie A Kovacs
Journal:  J Biol Inorg Chem       Date:  2019-07-24       Impact factor: 3.358

5.  Characterization of metastable intermediates formed in the reaction between a Mn(II) complex and dioxygen, including a crystallographic structure of a binuclear Mn(III)-peroxo species.

Authors:  Michael K Coggins; Xianru Sun; Yeonju Kwak; Edward I Solomon; Elena Rybak-Akimova; Julie A Kovacs
Journal:  J Am Chem Soc       Date:  2013-04-03       Impact factor: 15.419

6.  An anionic N-donor ligand promotes manganese-catalyzed water oxidation.

Authors:  Karin J Young; Michael K Takase; Gary W Brudvig
Journal:  Inorg Chem       Date:  2013-06-18       Impact factor: 5.165

7.  Reaction landscape of a pentadentate N5-ligated Mn(II) complex with O2˙- and H2O2 includes conversion of a peroxomanganese(III) adduct to a bis(μ-oxo)dimanganese(III,IV) species.

Authors:  Domenick F Leto; Swarup Chattopadhyay; Victor W Day; Timothy A Jackson
Journal:  Dalton Trans       Date:  2013-07-19       Impact factor: 4.390

8.  MnIII-Peroxo adduct supported by a new tetradentate ligand shows acid-sensitive aldehyde deformylation reactivity.

Authors:  Melissa C Denler; Gayan B Wijeratne; Derek B Rice; Hannah E Colmer; Victor W Day; Timothy A Jackson
Journal:  Dalton Trans       Date:  2018-10-02       Impact factor: 4.390

9.  Spectroscopic characterization and reactivity studies of a mononuclear nonheme Mn(III)-hydroperoxo complex.

Authors:  Hee So; Young Jun Park; Kyung-Bin Cho; Yong-Min Lee; Mi Sook Seo; Jaeheung Cho; Ritimukta Sarangi; Wonwoo Nam
Journal:  J Am Chem Soc       Date:  2014-08-20       Impact factor: 15.419

10.  Importance of Metal-Ion Exchange for the Biological Activity of Coordination Complexes of the Biomimetic Ligand N4Py.

Authors:  Arjan Geersing; Nathalie Ségaud; Monique G P van der Wijst; Marianne G Rots; Gerard Roelfes
Journal:  Inorg Chem       Date:  2018-06-19       Impact factor: 5.165

  10 in total

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