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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (3/3 displayed)

  • 2023The Complex Reactivity of [(salen)Fe]2(μ-O) with HBpin and its Implications in Catalysis4citations
  • 2013Experimental and computational X-ray emission spectroscopy as a direct probe of protonation states in oxo-bridged MnIV dimers relevant to redox-active metalloproteins68citations
  • 2013The protonation states of oxo-bridged MnIV dimers resolved by experimental and computational Mn K pre-edge X-ray absorption spectroscopy55citations

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Firmstone, Leah
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Diefenbach, Martin
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Mahon, Mary F.
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Lau, Samantha
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Hood, Thomas M.
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Webster, Ruth
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Kern, Jan
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Neese, Frank
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Sokaras, Dimosthenis
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Bergmann, Uwe
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Yachandra, Vittal K.
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Schroeder, Henning
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Lassalle-Kaiser, Benedikt
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Pecoraro, Vincent L.
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Boron, Thaddeus T.
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Delgado-Jaime, Mario U.
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Nordlund, Dennis
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Beckwith, Martha A.
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Pollock, Christopher J.
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2013

Co-Authors (by relevance)

  • Firmstone, Leah
  • Diefenbach, Martin
  • Mahon, Mary F.
  • Lau, Samantha
  • Hood, Thomas M.
  • Webster, Ruth
  • Kern, Jan
  • Neese, Frank
  • Sokaras, Dimosthenis
  • Bergmann, Uwe
  • Yachandra, Vittal K.
  • Schroeder, Henning
  • Lassalle-Kaiser, Benedikt
  • Pecoraro, Vincent L.
  • Boron, Thaddeus T.
  • Debeer, Serena
  • Yano, Junko
  • Weng, Tsu Chien
  • Delgado-Jaime, Mario U.
  • Alonso-Mori, Roberto
  • Nordlund, Dennis
  • Beckwith, Martha A.
  • Pollock, Christopher J.
OrganizationsLocationPeople

article

The protonation states of oxo-bridged MnIV dimers resolved by experimental and computational Mn K pre-edge X-ray absorption spectroscopy

  • Kern, Jan
  • Neese, Frank
  • Lassalle-Kaiser, Benedikt
  • Pecoraro, Vincent L.
  • Pollock, Christopher J.
  • Boron, Thaddeus T.
  • Debeer, Serena
  • Yachandra, Vittal K.
  • Yano, Junko
  • Krewald, Vera
  • Beckwith, Martha A.
Abstract

<p>In nature, the protonation of oxo bridges is a commonly encountered mechanism for fine-tuning chemical properties and reaction pathways. Often, however, the protonation states are difficult to establish experimentally. This is of particular importance in the oxygen evolving complex of photosystem II, where identification of the bridging oxo protonation states is one of the essential requirements toward unraveling the mechanism. In order to establish a combined experimental and theoretical protocol for the determination of protonation states, we have systematically investigated a series of Mn model complexes by Mn K pre-edge X-ray absorption spectroscopy. An ideal test case for selective bis-μ-oxo-bridge protonation in a Mn dimer is represented by the system [Mn<sup>IV</sup><sub>2</sub>(salpn)<sub>2</sub>(μ-OH<sub>n</sub>) <sub>2</sub>]<sup>n+</sup>. Although the three species [Mn<sup>IV</sup> <sub>2</sub>(salpn)<sub>2</sub>(μ-O)<sub>2</sub>], [Mn<sup>IV</sup> <sub>2</sub>(salpn)<sub>2</sub>(μ-O)(μ-OH)]<sup>+</sup> and [Mn <sup>IV</sup><sub>2</sub>(salpn)<sub>2</sub>(μ-OH)<sub>2</sub>]<sup>2+</sup> differ only in the protonation of the oxo bridges, they exhibit distinct differences in the pre-edge region while maintaining the same edge energy. The experimental spectra are correlated in detail to theoretically calculated spectra. A time-dependent density functional theory approach for calculating the pre-edge spectra of molecules with multiple metal centers is presented, using both high spin (HS) and broken symmetry (BS) electronic structure solutions. The most intense pre-edge transitions correspond to an excitation of the Mn 1s core electrons into the unoccupied orbitals of local e<sub>g</sub> character (d <sub>z</sub><sup>2</sup> and d<sub>xy</sub> based in the chosen coordinate system). The lowest energy experimental feature is dominated by excitations of 1s-α electrons, and the second observed feature is primarily attributed to 1s-β electron excitations. The observed energetic separation is due to spin polarization effects in spin-unrestricted density functional theory and models final state multiplet effects. The effects of spin polarization on the calculated Mn K pre-edge spectra, in both the HS and BS solutions, are discussed in terms of the strength of the antiferromagnetic coupling and associated changes in the covalency of Mn-O bonds. The information presented in this paper is complemented with the X-ray emission spectra of the same compounds published in an accompanying paper. Taken together, the two studies provide the foundation for a better understanding of the X-ray spectroscopic data of the oxygen evolving complex (OEC) in photosystem II. <br/></p>

Topics
  • density
  • impedance spectroscopy
  • compound
  • theory
  • Oxygen
  • strength
  • density functional theory
  • x-ray absorption spectroscopy
  • spin polarization