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On the Magnetic and Spectroscopic Properties of High-Valent Mn_3CaO_4 Cubanes as Structural Units of Natural and Artificial Water-Oxidizing Catalysts

机译:以天然和人工水氧化催化剂为结构单元的高价Mn_3CaO_4古巴的磁性和光谱性质

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摘要

The Mn(Ⅳ)_3CaO_4 cubane is a structural motif present in the oxygen-evolving complex (OEC) of photo-system Ⅱ and in water-oxidizing Mn/Ca layered oxides. This work investigates the magnetic and spectroscopic properties of two recently synthesized complexes and a series of idealized models that incorporate this structural unit. Magnetic interactions, accessible spin states, and ~(55)Mn isotropic hyperfine couplings are computed with quantum chemical methods and form the basis for structure-property correlations. Additionally, the effects of oxo-bridge protonation and one-electron reduction are examined. The calculated properties are found to be in excellent agreement with available experimental data. It is established that all synthetic and model Mn(Ⅳ)_3CaO_4 cubane complexes have the same high-spin S = 9/2 ground state. The magnetic coupling conditions under which different ground spin states can be accessed are determined. Substitution of Mn(Ⅳ) magnetic centers by diamagnetic ions [e.g., Ge(Ⅳ)] allows one to "switch off" specific spin sites in order to examine the magnetic orbitals along individual Mn-Mn exchange pathways, which confirms the predominance of ferromagnetic interactions within the cubane framework. The span of the Heisenberg spin ladder is found to correlate inversely with the number of protonated oxo bridges. Energetic comparisons for protonated models show that the tris-μ-oxo bridge connecting only Mn ions in the cubane has the lowest proton affinity and that the average relaxation energy per additional proton is on the order of 18 kcal·mol~(-1), thus making access to ground states other than the high-spin S = 9/2 state in these cubanes unlikely. The relevance of these cubanes for the OEC and synthetic oxides is discussed.
机译:Mn(Ⅳ)_3CaO_4古巴是光系统Ⅱ的析氧络合物(OEC)和水氧化Mn / Ca层状氧化物中的结构基序。这项工作研究了两个最近合成的配合物的磁和光谱性质,以及结合了该结构单元的一系列理想化模型。利用量子化学方法计算了磁性相互作用,可及的自旋态和〜(55)Mn各向同性超精细耦合,并为结构性质相关性奠定了基础。另外,检查了氧桥质子化和单电子还原的作用。发现计算出的性质与可获得的实验数据非常一致。可以确定,所有合成和模型Mn(Ⅳ)_3CaO_4古巴配合物均具有相同的高自旋S = 9/2基态。确定了可以访问不同接地自旋状态的磁耦合条件。 Mn(Ⅳ)磁性中心被反磁性离子取代[例如Ge(Ⅳ)]可以“关闭”特定的自旋位点,以便检查沿各个Mn-Mn交换路径的磁轨道,这证实了铁磁的优势古巴框架内的互动。发现海森堡自旋梯的跨度与质子化羰基桥的数量成反比。质子化模型的能量比较表明,仅连接古巴中Mn离子的tris-μ-oxo桥具有最低的质子亲和力,每个附加质子的平均弛豫能量约为18 kcal·mol〜(-1),因此,在这些库中不太可能访问除高旋转S = 9/2状态之外的其他基态。讨论了这些培养皿与OEC和合成氧化物的相关性。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2013年第15期|5726-5739|共14页
  • 作者单位

    Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-38, 45470 Muelheim an der Ruhr, Germany;

    Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-38, 45470 Muelheim an der Ruhr, Germany;

    Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-38, 45470 Muelheim an der Ruhr, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:12:33

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