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The Ru-Hbpp Water Oxidation Catalyst

机译:Ru-Hbpp水氧化催化剂

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摘要

A thorough characterization of the Ru-Hbpp (in,in-{[Ru~(II)(trpy)(H_2O)]_2(μ-bpp)}~(3+) (trpy is 2,2':6',2"-terpyridine, bpp is bis(2-pyridyl)-3,5-pyrazolate)) water oxidation catalyst has been carried out employing structural (single crystal X-ray), spectroscopic (UV-vis and NMR), kinetic, and electrochemical (cyclic voltammetry) analyses. The latter reveals the existence of five different oxidation states generated by sequential oxidation of an initial II,II state to an ultimate, formal IV,IV oxidation state. Each of these oxidation states has been characterized by UV-vis spectroscopy, and their relative stabilities are reported. The electron transfer kinetics for individual one-electron oxidation steps have been measured by means of stopped flow techniques at temperatures ranging from 10 to 40 ℃ and associated second-order rate constants and activation parameters (△H* and △S*) have been determined. Room-temperature rate constants for substitution of aqua ligands by MeCN as a function of oxidation state have been determined using UV-vis spectroscopy. Complete kinetic analysis has been carried out for the addition of 4 equiv of oxidant (Ce~(IV)) to the initial Ru-Hbpp catalyst in its II,II oxidation state. Subsequent to reaching the formal oxidation state IV,IV, an intermediate species is formed prior to oxygen evolution. Intermediate formation and oxygen evolution are both much slower than the preceding ET processes, and both are first order with regard to the catalyst; rate constants and activation parameters are reported for these steps. Theoretical modeling at density functional and multireference second-order perturbation theory levels provides a microscopic mechanism for key steps in intermediate formation and oxygen evolution that are consistent with experimental kinetic data and also oxygen labeling experiments, monitored via mass spectrometry (MS), that unambiguously establish that oxygen-oxygen bond formation proceeds intramolecularly. Finally, the Ru-Hbpp complex has also been studied under catalytic conditions as a function of time by means of manometric measurements and MS, and potential deactivation pathways are discussed.
机译:Ru-Hbpp(in,in-{[Ru〜(II)(trpy)(H_2O)] _ 2(μ-bpp)}〜(3+)(trpy为2,2':6',已使用结构(单晶X射线),分光镜(UV-vis和NMR),动力学和化学方法进行了2“-叔吡啶,bpp为双(2-吡啶基)-3,5-吡唑酸酯)水氧化催化剂电化学(循环伏安法)分析,后者揭示了从初始II,II态到最终的正式IV,IV氧化态的顺序氧化产生的五个不同的氧化态的存在,其中每个氧化态都具有UV-通过停止流动技术在10至40℃的温度范围内测量了单个单电子氧化步骤的电子转移动力学,以及相关的二阶速率常数和活化参数(△确定了H *和△S *)。室温下用MeCN取代水配体的速率常数n的氧化态已使用紫外可见光谱法测定。已经进行了完整的动力学分析,以将4当量的氧化剂(Ce〜(IV))加入到初始的II-II氧化状态的Ru-Hbpp催化剂中。达到形式氧化态IV,IV之后,在氧气释放之前形成了中间物质。中间形成和氧气释放都比之前的ET过程慢得多,并且两者都是催化剂的一级反应。报告这些步骤的速率常数和激活参数。密度泛函和多参考二级扰动理论水平的理论模型为中间体形成和氧释放的关键步骤提供了微观机制,这些步骤与实验动力学数据以及通过质谱(MS)明确确定的氧标记实验一致氧-氧键的形成在分子内进行。最后,还通过测压法和质谱法研究了Ru-Hbpp络合物在催化条件下随时间的变化,并探讨了潜在的失活途径。

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  • 来源
    《Journal of the American Chemical Society》 |2009年第42期|15176-15187|共12页
  • 作者单位

    Institute of Chemical Research of Catalonia (ICIQ), Avinguda Paisos Catalans 16, E-43007 Tarragona, Spain;

    Institute of Chemical Research of Catalonia (ICIQ), Avinguda Paisos Catalans 16, E-43007 Tarragona, Spain;

    Department of Chemistry, Department of Chemistry and Supercomputing Institute, University of Minnesota, 207 Pleasant Street SE, Minneapolis, Minnesota 55455;

    Department of Physical Chemistry, University of Geneva, 30 Quai Ernest Ansermet, CH-1211 Geneva, Switzerland, Serveis Teenies de Recerca;

    Departament de Quimica, Universitat de Girona, E-17071 Girona, Spain;

    Departament de Quimica, Universitat de Girona, E-17071 Girona, Spain;

    Departament de Quimica, Universitat de Girona, E-17071 Girona, Spain;

    Departament de Quimica, Universitat de Girona, E-17071 Girona, Spain;

    Institute of Chemical Research of Catalonia (ICIQ), Avinguda Paisos Catalans 16, E-43007 Tarragona, Spain;

    Departament de Quimica, Universitat de Girona, E-17071 Girona, Spain;

    Department of Chemistry, Department of Chemistry and Supercomputing Institute, University of Minnesota, 207 Pleasant Street SE, Minneapolis, Minnesota 55455;

    Department of Chemistry, Department of Chemistry and Supercomputing Institute, University of Minnesota, 207 Pleasant Street SE, Minneapolis, Minnesota 55455 Department of Physical Chemistry, University of Geneva, 30 Quai Ernest Ansermet, CH-1211 Geneva, Switzerland, Serveis Teenies de Recerca;

    Institute of Chemical Research of Catalonia (ICIQ), Avinguda Paisos Catalans 16, E-43007 Tarragona, Spain Departament de Quimica, Universitat Autonoma de Barcelona, Cerdanyola del Valles, E-08193 Barcelona, Spain;

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  • 入库时间 2022-08-18 03:17:24

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