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      Nature of S-States in the Oxygen-Evolving Complex Resolved by High-Energy Resolution Fluorescence Detected X-ray Absorption Spectroscopy

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          Abstract

          Photosystem II, the water splitting enzyme of photosynthesis, utilizes the energy of sunlight to drive the four-electron oxidation of water to dioxygen at the oxygen-evolving complex (OEC). The OEC harbors a Mn 4CaO 5 cluster that cycles through five oxidation states S i ( i = 0–4). The S 3 state is the last metastable state before the O 2 evolution. Its electronic structure and nature of the S 2 → S 3 transition are key topics of persisting controversy. Most spectroscopic studies suggest that the S 3 state consists of four Mn(IV) ions, compared to the Mn(III)Mn(IV) 3 of the S 2 state. However, recent crystallographic data have received conflicting interpretations, suggesting either metal- or ligand-based oxidation, the latter leading to an oxyl radical or a peroxo moiety in the S 3 state. Herein, we utilize high-energy resolution fluorescence detected (HERFD) X-ray absorption spectroscopy to obtain a highly resolved description of the Mn K pre-edge region for all S-states, paying special attention to use chemically unperturbed S 3 state samples. In combination with quantum chemical calculations, we achieve assignment of specific spectroscopic features to geometric and electronic structures for all S-states. These data are used to confidently discriminate between the various suggestions concerning the electronic structure and the nature of oxidation events in all observable catalytic intermediates of the OEC. Our results do not support the presence of either peroxo or oxyl in the active configuration of the S 3 state. This establishes Mn-centered storage of oxidative equivalents in all observable catalytic transitions and constrains the onset of the O–O bond formation until after the final light-driven oxidation event.

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          Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density

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            Density-functional thermochemistry. III. The role of exact exchange

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              Balanced basis sets of split valence, triple zeta valence and quadruple zeta valence quality for H to Rn: Design and assessment of accuracy.

              Gaussian basis sets of quadruple zeta valence quality for Rb-Rn are presented, as well as bases of split valence and triple zeta valence quality for H-Rn. The latter were obtained by (partly) modifying bases developed previously. A large set of more than 300 molecules representing (nearly) all elements-except lanthanides-in their common oxidation states was used to assess the quality of the bases all across the periodic table. Quantities investigated were atomization energies, dipole moments and structure parameters for Hartree-Fock, density functional theory and correlated methods, for which we had chosen Møller-Plesset perturbation theory as an example. Finally recommendations are given which type of basis set is used best for a certain level of theory and a desired quality of results.
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                Author and article information

                Journal
                J Am Chem Soc
                J Am Chem Soc
                ja
                jacsat
                Journal of the American Chemical Society
                American Chemical Society
                0002-7863
                1520-5126
                16 November 2023
                29 November 2023
                : 145
                : 47
                : 25579-25594
                Affiliations
                []Max-Planck-Institut für Chemische Energiekonversion , Stiftstr. 34-36, Mülheim an der Ruhr 45470, Germany
                []Institute of Nanoscience & Nanotechnology, NCSR “Demokritos” , Athens 15310, Greece
                [§ ]Max-Planck-Institut für Kohlenforschung , Kaiser-Wilhelm-Platz 1, Mülheim an der Ruhr 45470, Germany
                []Laboratory of Ultrafast Spectroscopy (LSU) and Lausanne Centre for Ultrafast Science, École Polytechnique Fédérale de Lausanne (EPFL) , Lausanne CH-1015, Switzerland
                []Department of Chemistry, Technical University of Darmstadt , Peter-Grünberg-Str. 4, Darmstadt 64287, Germany
                Author notes
                Author information
                https://orcid.org/0000-0002-4550-710X
                https://orcid.org/0000-0003-4691-0547
                https://orcid.org/0000-0002-2146-9065
                https://orcid.org/0000-0002-5196-3400
                Article
                10.1021/jacs.3c06046
                10690802
                37970825
                a50153cf-d026-420b-a1cb-b8b4178165f1
                © 2023 The Authors. Published by American Chemical Society

                Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained ( https://creativecommons.org/licenses/by/4.0/).

                History
                : 09 June 2023
                : 13 October 2023
                : 13 October 2023
                Funding
                Funded by: Alexander von Humboldt-Stiftung, doi 10.13039/100005156;
                Award ID: NA
                Funded by: Max-Planck-Gesellschaft, doi 10.13039/501100004189;
                Award ID: NA
                Categories
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                Custom metadata
                ja3c06046
                ja3c06046

                Chemistry
                Chemistry

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