Literature DB >> 11669688

Density Functional Calculations of Electronic Structure, Charge Distribution, and Spin Coupling in Manganese-Oxo Dimer Complexes.

X. G. Zhao1, W. H. Richardson, J.-L. Chen, J. Li, L. Noodleman, H.-L. Tsai, D. N. Hendrickson.   

Abstract

We have calculated the electronic structures of five different manganese-oxo dimer complexes using density functional methods combined with the broken symmetry and spin projection concepts. The number of carboxylate, oxo, and peroxo bridging ligands was varied, and the terminal ligands were triazacyclononane (TACN). The formal Mn oxidation states varied from Mn(III)(2) and Mn(III)Mn(IV) to Mn(IV)(2). These complexes have been synthesized and their X-ray structures and magnetic properties measured previously. We have calculated the Heisenberg spin coupling parameters J and resonance delocalization parameters B for all of these systems. Despite the very small energy differences involved, there is a good correspondence between calculated and experimental Heisenberg J parameters. We have analyzed potential changes in the calculated effective Heisenberg coupling J(eff) for the mixed-valence Mn(III)Mn(IV) complexes when partial or complete delocalization due to the B parameter is taken into account. These changes depend also on the energy of the relevant intervalence band. Surprisingly, in the two mixed-valence systems studied, the high spin S = (5)/(2) state lies below S = (7)/(2). This is consistent with spin coupling between Mn with site spins S(1) = 1, S(2) = (3)/(2), corresponding to intermediate spin Mn(I) and Mn(II) respectively, instead of the coupling expected from the formal oxidation states, S(1) = 2, S(2) = (3)/(2) from high spin Mn(III) and Mn(IV). The spin and charge distributions in the broken symmetry ground states are also consistent with intermediate spin S(1) = 1, S(2) = (3)/(2). The calculated charge distributions show strong metal-ligand covalency. In fact, as the formal oxidation states of the Mn sites increase, the net Mn charges generally show a slow decrease, consistent with a very strong ligand --> metal charge transfer, particularly from &mgr;-oxo or &mgr;-peroxo ligands. TACN is a better donor ligand than carboxylate, even when calculated on a per donor atom basis. The ligand atom charge transfer order is peroxo >/= oxo >> TACN > acetate. The TACN > acetate ordering is expected from the spectrochemical series, but the strong charge transfer and strong metal-ligand covalency of peroxo and oxo ligands with the Mn sites cannot be simply related to their positions in the spectrochemical series. In the Mn(IV)(2)(&mgr;-O)(2)(&mgr;-O(2))(TACN)(2), each peroxo oxygen has a small charge (-0.3), much less than found for each &mgr;-O atom (-0.7). The high-spin S = 3 state lies quite low in energy, 8 kcal/mol from our calculations and about 4 kcal/mol based on the experimental Heisenberg spin coupling parameters. Potential molecular oxygen dissociation pathways involving a spin S = 1 state are discussed. Effective ligand field diagrams are constructed from the calculated energy levels which display the competition between spin polarization splitting and the ligand field t(2g)-e(g) splitting and allow comparisons of electronic structure among different complexes. The electronic structure and spin coupling of these complexes was also compared to the corresponding "core-only" complexes where both TACN ligands were removed, yielding a far weaker ligand field. There is a strong ferromagnetic shift in the "core-only" complexes compared with the complete TACN complexes, also showing the effects of a weaker ligand field.

Entities:  

Year:  1997        PMID: 11669688     DOI: 10.1021/ic9514307

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


  8 in total

1.  Dimanganese catalase--spectroscopic parameters from broken-symmetry density functional theory of the superoxidized Mn(III)/Mn(IV) state.

Authors:  Sebastian Sinnecker; Frank Neese; Wolfgang Lubitz
Journal:  J Biol Inorg Chem       Date:  2005-04-14       Impact factor: 3.358

2.  Structure, redox, pKa, spin. A golden tetrad for understanding metalloenzyme energetics and reaction pathways.

Authors:  Louis Noodleman; Wen-Ge Han
Journal:  J Biol Inorg Chem       Date:  2006-07-08       Impact factor: 3.358

3.  Computational studies of the O(2)-evolving complex of photosystem II and biomimetic oxomanganese complexes.

Authors:  Eduardo M Sproviero; José A Gascón; James P McEvoy; Gary W Brudvig; Victor S Batista
Journal:  Coord Chem Rev       Date:  2008-02       Impact factor: 22.315

4.  Quantum cluster size and solvent polarity effects on the geometries and Mössbauer properties of the active site model for ribonucleotide reductase intermediate X: a density functional theory study.

Authors:  Wen-Ge Han; Louis Noodleman
Journal:  Theor Chem Acc       Date:  2010-03       Impact factor: 1.702

5.  Density functional theory analysis of structure, energetics, and spectroscopy for the Mn-Fe active site of Chlamydia trachomatis ribonucleotide reductase in four oxidation states.

Authors:  Wen-Ge Han; Debra Ann Giammona; Donald Bashford; Louis Noodleman
Journal:  Inorg Chem       Date:  2010-08-16       Impact factor: 5.165

6.  Single crystal X- and Q-band EPR spectroscopy of a binuclear Mn(2)(III,IV) complex relevant to the oxygen-evolving complex of photosystem II.

Authors:  Junko Yano; Kenneth Sauer; Jean-Jacques Girerd; Vittal K Yachandra
Journal:  J Am Chem Soc       Date:  2004-06-23       Impact factor: 15.419

7.  The protonation states of oxo-bridged Mn(IV) dimers resolved by experimental and computational Mn K pre-edge X-ray absorption spectroscopy.

Authors:  Vera Krewald; Benedikt Lassalle-Kaiser; Thaddeus T Boron; Christopher J Pollock; Jan Kern; Martha A Beckwith; Vittal K Yachandra; Vincent L Pecoraro; Junko Yano; Frank Neese; Serena DeBeer
Journal:  Inorg Chem       Date:  2013-10-25       Impact factor: 5.165

8.  The catalytic cycle of tyrosinase: peroxide attack on the phenolate ring followed by O[bond]O cleavage.

Authors:  Per E M Siegbahn
Journal:  J Biol Inorg Chem       Date:  2003-03-13       Impact factor: 3.358

  8 in total

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