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The enzyme-like catalytic hydrogen abstraction reaction mechanisms of cyclic hydrocarbons with magnesium-diluted Fe-MOF-74

机译:用镁稀释的Fe-Mof-74的环状烃的酶样催化氢试剂机制 - 74

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Enzymatic heme and non-heme Fe(iv)-O species usually play an important role in hydrogen abstraction of biocatalytic reactions, yet duplicating the reactivity in biomimicry remains a great challenge. Based on Xiao et al.'s experimental work [Nat. Chem., 2014, 6(7), 590], we theoretically found that in the presence of the oxidant N2O, the enzyme-like metal organic framework, i.e., magnesium-diluted Fe-MOF-74 [Fe/(Mg)-MOF-74] can activate the C-H bonds of 1,4-cyclohexadiene (CHD) into benzene with a two-step hydrogen abstraction mechanism based on the density functional theory (DFT) level. It is shown that the first transition state about the cleavage of the N-O bond of N2O to form the Fe(iv)-O species is the rate-determining step with activation enthalpy of 19.4 kcal mol(-1) and the complete reaction is exothermic by 62.8 kcal mol(-1) on quintet rather than on triplet PES. In addition, we proposed a rebound mechanism of cyclic cyclohexane (CHA) hydroxylation to cyclohexanol which has not been studied experimentally. Note that the activation enthalpies on the first hydrogen abstraction for both cyclic CHD and cyclohexane are just 8.1 and 3.5 kcal mol(-1), respectively, which are less than that of 13.9 kcal mol(-1) for chained ethane. Most importantly, for the hydrogen abstraction of methane catalyzed by M/(Mg)-MOF-74 (M = Cu, Ni, Fe, and Co), we found that the activation enthalpies versus the C-H bond length of methane of TSs, NPA charge of the reacting oxyl atom have linear relationships with different slopes, i.e., shorter C-H bond and less absolute value of NPA charge of oxyl atom are associated with lower activation enthalpy; while for the activation of methane, ethane, propane and CHD catalyzed by Fe/(Mg)-MOF-74, there also exists positive correlations between activation enthalpies, bond dissociation energies (BDEs) and C-H bond lengths in TSs, respectively. We hope the present theoretical study may provide the guideline to predict the performance of MOFs in C-H bond activation reactions.
机译:酶血红素和非血红素铁(IV)-O物种通常发挥生物催化反应的氢提取了重要的作用,但在复制仿生学的反应仍然是一个很大的挑战。根据肖等人的实验工作[纳特。 。杂志,2014年,6(7),590],从理论上发现,在氧化剂N 2 O的存在下,酶状金属有机骨架,即,镁 - 稀释的Fe-MOF-74的[Fe /(Mg)的 - MOF-74]可以激活1,4-环己二烯(CHD)的CH键成苯基于密度泛函理论(DFT)水平两步氢抽象机制。结果表明,大约N2O的NO键的裂解的第一过渡状态,以形成Fe的(ⅳ)-O物种是速率决定步骤用19.4千卡摩尔的活化焓(-1)和完整的反应是放热通过在五重峰,而不是三重PES 62.8千卡摩尔(-1)。此外,我们提出了循环环己烷(CHA)羟基化环己醇尚未实验研究的反弹机制。请注意,在第一夺氢两个环状CHD和环己烷的活化焓只是8.1和3.5千卡摩尔(-1),分别,其小于13.9千卡摩尔(-1)链接的乙烷。最重要的是,对于甲烷的夺氢由M /(Mg)的催化-MOF-74(M =铜,镍,铁,和Co),我们发现,活化焓与TS中,NPA的甲烷的CH键长电荷的反应氧基原子具有不同的斜率,即,更短的CH键和NPA电荷少绝对值的线性关系氧基原子与较低的活化焓相关联;而对于甲烷,乙烷,丙烷和冠心病的用Fe催化的激活/(Mg)的-MOF-74外,还存在在TS中激活焓,键离解能(二苯醚)和C-H键长之间的正相关关系,分别。我们希望本理论研究可以提供指引,预测MOFs材料的C-H键活化反应性能。

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  • 来源
    《RSC Advances》 |2019年第41期|共11页
  • 作者单位

    Shantou Univ Dept Chem Shantou 515063 Guangdong Peoples R China;

    Shantou Univ Dept Chem Shantou 515063 Guangdong Peoples R China;

    CIAE Inst Radiochem Beijing 102413 Peoples R China;

    Nanjing Tech Univ Coll Sci Dept Appl Chem Nanjing 211816 Jiangsu Peoples R China;

    Israel Inst Technol Wolfson Dept Chem Engn Haifa Israel;

    CIAE Inst Radiochem Beijing 102413 Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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