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Regulating the Basicity of Metal-Oxido Complexes with a Single Hydrogen Bond and Its Effect on C-H Bond Cleavage

机译:用单一氢键调节金属氧化亚络合物的碱度及其对C-H键切割的影响

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摘要

The functionalization of C-H bonds is an essential reaction in biology and chemistry. Metalloenzymes that often exhibit this type of reactivity contain metal-oxido intermediates that are directly involved in the initial cleavage of the C-H bonds. Regulation of the cleavage process is achieved, in part, by hydrogen bonds that are proximal to the metal-oxido units, yet our understanding of their exact role(s) is still emerging. To gain further information into the role of H-bonds on C-H bond activation, a hybrid set of urea-containing tripodal ligands has been developed in which a single H-bond can be adjusted through changes in the properties of one ureayl N-H bond. This modularity is achieved by appending a phenyl ring with different para-substituents from one ureayl NH group. The ligands have been used to prepare a series of Mn-III-oxido complexes, and a Hammett correlation was found between the pK(a) values of the complexes and the substituents on the phenyl ring that was explained within the context of changes to the H-bonds involving the Mn-III-oxido unit. The complexes were tested for their reactivity toward 9,10-dihydroanthracene (DHA), and a Hammett correlation was found between the second-order rate constants for the reactions and the pK(a) values. Studies to determine activation parameters and the kinetic isotope effects are consistent with a mechanism in which rate-limiting proton transfer is an important contributor. However, additional reactivity studies with xanthene found a significant increase in the rate constant compared to DHA, even though the substrates have the same pK(a) (C-H) values. These results do not support a discrete proton-transfer/electron-transfer process, but rather an asynchronous mechanism in which the proton and electron are transferred unequally at the transition state.
机译:C-H键的官能化是生物学和化学的基本反应。通常表现出这种反应性的金属酶含有金属 - 氧通中间体,其直接参与C-H键的初始切割。部分地通过对金属 - 氧化单位近侧的氢键来实现裂解过程的调节,但我们对其确切作用的理解仍然是出现的。为了进一步进一步进一步进入H键对C-H键活化的作用,已经开发了一种含杂种尿素尿道配体,其中可以通过一种脲基N-H键的性质的变化来调节单个H键。通过从一种脲NH组中邻接具有不同对取代基的苯环来实现这种模块化。已经使用配体制备一系列Mn-III-氧化络合物,并且在络合物的PK(A)值和苯环上的取代基之间发现了HAMMETT相关性,所述苯环在变化的背景下解释H键涉及Mn-III-oxido单位。测试复合物的反应性朝向9,10-二羟基蒽(DHA),并且在反应的二阶速率常数和PK(A)值之间发现了Hammett相关性。确定激活参数和动力学同位素效应的研究与一种机制一致,其中限流质子转移是重要的贡献者。然而,与二苯乙烯的额外反应性研究发现与DHA相比的速率常数显着增加,即使基材具有相同的PK(A)(C-H)值。这些结果不支持离散质子传输/电子转移过程,而是一种异步机构,其中质子和电子在过渡状态下不均匀地传送。

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  • 来源
    《Journal of the American Chemical Society》 |2019年第28期|11142-11150|共9页
  • 作者单位

    Univ Calif Irvine Dept Chem 1102 Nat Sci 2 Irvine CA 92697 USA;

    Univ Calif Irvine Dept Chem 1102 Nat Sci 2 Irvine CA 92697 USA;

    Univ Calif Irvine Dept Chem 1102 Nat Sci 2 Irvine CA 92697 USA;

    Univ Calif Irvine Dept Chem 1102 Nat Sci 2 Irvine CA 92697 USA;

    Univ Calif Irvine Dept Chem 1102 Nat Sci 2 Irvine CA 92697 USA;

    Univ Calif Irvine Dept Chem 1102 Nat Sci 2 Irvine CA 92697 USA;

  • 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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