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Mechanistically Driven Control over Cubane Oxo Cluster Catalysts

机译:机械驱动的对古巴羰基团簇催化剂的控制

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摘要

Predictive and mechanistically driven access to polynuclear oxo clusters and related materials remains a grand challenge of inorganic chemistry. We here introduce a novel strategy for synthetic control over highly sought-after transition metal {M4O4} cubanes. They attract interest as molecular water oxidation catalysts that combine features of both heterogeneous oxide catalysts and natures cuboidal {CaMn4O5} center of photosystem II. For the first time, we demonstrate the outstanding structure-directing effect of straightforward inorganic counteranions in solution on the self-assembly of oxo clusters. We introduce a selective counteranion toolbox for the controlled assembly of di(2-pyridyl) ketone (dpk) with M(OAc)(2) (M = Co, Ni) precursors into different cubane types. Perchlorate anions provide selective access to type 2 cubanes with the characteristic {H2O-M-2(OR)(2)-OH2} edge-site, such as [Co-4(dpy-C{OH}O)(4)(OAc)(2)(H2O)(2)](ClO4)(2). Type 1 cubanes with separated polar faces [Co-4(dpy-C{OH}O)(4)(L2)(4)](n+) (L2 = OAc, Cl, or OAc and H2O) can be tuned with a wide range of other counteranions. The combination of these counteranion sets with Ni(OAc)(2) as precursor selectively produces type 2 Co/Ni-mixed or {Ni4O4} cubanes. Systematic mechanistic experiments in combination with computational studies provide strong evidence for type 2 cubane formation through reaction of the key dimeric building block [M-2(dpy-C{OH}O)(2)(H2O)(4)](2+) with monomers, such as [Co(dpy-C{OH}O)(OAc)(H2O)(3)]. Furthermore, both experiments and DFT calculations support an energetically favorable type 1 cubane formation pathway via direct head-to-head combination of two [Co-2(dpy-C{OH}O)(2)(OAc)(2)(H2O)(2)] dimers. Finally, the visible-light-driven water oxidation activity of type 1 and 2 cubanes with tuned ligand environments was assessed. We pave the way to efficient design concepts in coordination chemistry through ionic control over cluster assembly pathways. Our comprehensive strategy demonstrates how retrosynthetic analyses can be implemented with readily available assembly directing counteranions to provide rapid access to tuned molecular materials.
机译:对多核氧代簇和相关材料的可预测性和机械驱动的访问仍然是无机化学面临的巨大挑战。我们在这里介绍了一种新的策略,用于对广受欢迎的过渡金属{M4O4}古巴进行合成控制。它们作为分子水氧化催化剂引起了人们的兴趣,该催化剂结合了非均相氧化物催化剂的特征和光系统II的自然立方{CaMn4O5}中心。首次,我们证明了溶液中直接无机抗衡离子对羰基团簇的自组装具有出色的结构导向作用。我们介绍了一种选择性的抗衡阴离子工具箱,用于将二(2-吡啶基)酮(dpk)与M(OAc)(2)(M = Co,Ni)前体控制组装成不同的古巴类型。高氯酸根阴离子可选择性进入具有特征{H2O-M-2(OR)(2)-OH2}边缘位点的2型古巴,例如[Co-4(dpy-C {OH} O)(4)( OAc)(2)(H2O)(2)](ClO4)(2)。具有分离的极性面的1型古巴[Co-4(dpy-C {OH} O)(4)(L2)(4)](n +)(L2 = OAc,Cl或OAc和H2O)可以通过其他抗衡离子种类繁多。这些抗衡阴离子与Ni(OAc)(2)作为前体的组合有选择地产生2型Co / Ni混合或{Ni4O4}古巴。系统的机械实验与计算研究相结合,为通过关键的二聚体结构单元[M-2(dpy-C {OH} O)(2)(H2O)(4)](2+)反应形成2型古巴提供了有力证据)与单体,例如[Co(dpy-C {OH} O)(OAc)(H2O)(3)]。此外,实验和DFT计算都通过两个[Co-2(dpy-C {OH} O)(2)(OAc)(2)(H2O)的直接头对头组合支持在能量上有利的1型古巴形成途径。 )(2)]二聚体。最后,评估了在可调配体环境下1型和2型古巴的可见光驱动的水氧化活性。我们通过对簇组装途径的离子控制,为配位化学中的高效设计概念铺平了道路。我们全面的策略展示了如何利用易于使用的装配导向抗衡离子实施逆合成分析,从而快速获得已调谐分子材料。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2019年第22期|8846-8857|共12页
  • 作者单位

    Univ Zurich, Dept Chem, Winterthurerstr 190, CH-8057 Zurich, Switzerland;

    Univ Zurich, Dept Chem, Winterthurerstr 190, CH-8057 Zurich, Switzerland|Univ Kufa, Fac Sci, Najaf 54001, Iraq;

    Univ Zurich, Dept Chem, Winterthurerstr 190, CH-8057 Zurich, Switzerland;

    Univ Zurich, Dept Chem, Winterthurerstr 190, CH-8057 Zurich, Switzerland;

    Univ Zurich, Dept Chem, Winterthurerstr 190, CH-8057 Zurich, Switzerland;

    Univ Zurich, Dept Chem, Winterthurerstr 190, CH-8057 Zurich, Switzerland;

  • 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);
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  • 正文语种 eng
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