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Elucidating Molecular Iridium Water Oxidation Catalysts Using Metal-Organic Frameworks: A Comprehensive Structural, Catalytic, Spectroscopic, and Kinetic Study

机译:使用金属有机骨架阐明分子铱水氧化催化剂:全面的结构,催化,光谱和动力学研究

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As a new class of porous, crystalline, molecular materials, metal-organic frameworks (MOFs) have shown great promise as recyclable and reusable single-site solid catalysts. Periodic order and site isolation of the catalytic struts in MOFs facilitate the studies of their activities and reaction mechanisms. Herein we report the construction of two highly stable MOFs (1 and 2) using elongated dicarboxylate bridging ligands derived from Cp*Ir(L)Cl complexes (L = dibenzoate-substituted 2,2'-bipyridine, bpy-dc, or dibenzoate-substituted 2-phenylpyridine, ppy-dc) and Zr_6O_4(OH)_4(carboxylate)_(12) cuboctahedral secondary building units (SBUs) and the elucidation of water oxidation pathways of the Cp*Ir(L)Cl catalysts using these MOFs. We carried out detailed kinetic studies of Ce~(40)-driven water oxidation reactions (WORs) catalyzed by the MOFs using UV-vis spectroscopy, phosphorescent oxygen detection, and gas chromatographic analysis. These results confirmed not only water oxidation activity of the MOFs but also indicated oxidative degradation of the Cp* rings daring the WQR. The (bpy-dc)Ir(H_2O)_2XCl (X is likely a formate or acetate group) complex resulted from the oxidative degradation process was identified as a competent catalyst responsible for the water oxidation activity of 1. Further characterization of the MOFs recovered from WORs using X-ray photoelectron, difiuse-reflectance UV-vis absorption, luminescence, and infrared spectroscopies supported the identity of (bpy-dc)Ir(H_2O)_2XCl as an active water oxidation catalyst. Kinetics of MOF-catalyzed WORs were monitored by Ce~(4+) consumptions and fitted with a reaction-diffusion model, revealing an intricate relationship between reaction and diffusion rates. Our work underscores the opportunity in using MOFs as well-defined single-site solid catalytic systems to reveal mechanistic details that are difficult to obtain for their homogeneous counterparts.
机译:作为一类新型的多孔,晶体,分子材料,金属有机骨架(MOF)作为可回收和可重复使用的单中心固相催化剂具有广阔的前景。 MOF中催化支柱的周期性有序和部位隔离促进了其活性和反应机理的研究。本文中,我们报道了使用衍生自Cp * Ir(L)Cl复合物(L =二苯甲酸酯取代的2,2'-联吡啶,bpy-dc或二苯甲酸酯-取代的2-苯基吡啶,ppy-dc)和Zr_6O_4(OH)_4(羧酸盐)_(12)立方八面体二级结构单元(SBUs),并使用这些MOF阐明了Cp * Ir(L)Cl催化剂的水氧化途径。我们使用紫外-可见光谱,磷光氧检测和气相色谱分析,对由MOF催化的Ce〜(40)驱动的水氧化反应(WOR)进行了详细的动力学研究。这些结果不仅证实了MOF的水氧化活性,而且表明了在WQR之前Cp *环的氧化降解。由氧化降解过程产生的(bpy-dc)Ir(H_2O)_2XCl(X可能是甲酸酯或乙酸酯基)络合物被鉴定为负责水氧化活性为1的有效催化剂。使用X射线光电子,漫反射紫外可见吸收,发光和红外光谱的WOR支持将(bpy-dc)Ir(H_2O)_2XCl用作活性水氧化催化剂。通过Ce〜(4+)的消耗量监测了MOF催化的WOR的动力学,并拟合了反应扩散模型,揭示了反应与扩散速率之间的复杂关系。我们的工作强调了将MOF用作定义明确的单中心固体催化系统的机会,以揭示其均相对应物难以获得的机械细节。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第48期|19895-19908|共14页
  • 作者单位

    Department of Chemistry, CB #3290, University of North Carolina, Chapel Hill, North Carolina 27599, United States;

    Department of Chemistry, CB #3290, University of North Carolina, Chapel Hill, North Carolina 27599, United States;

    Department of Chemistry, CB #3290, University of North Carolina, Chapel Hill, North Carolina 27599, United States;

  • 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 03:13:39

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