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首页> 外文期刊>Organometallics >Methane C-H bond activation by neutral lanthanide and thorium atoms in the gas phase: A theoretical prediction
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Methane C-H bond activation by neutral lanthanide and thorium atoms in the gas phase: A theoretical prediction

机译:气相中性镧系元素和or原子活化甲烷C-H键的理论预测

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Density functional theory (DFT) and Hartree-Fock effective core potential calculations have been performed to investigate the reactivity of neutral f-block atoms toward methane C-H bond activation. The first step of the methane dehydrogenation process, which corresponds to an oxidative insertion, was studied for all lanthanide and actinide thorium atoms. The DFT/B3LYP-correlated results indicate more favorable kinetic and thermochemical conditions for the insertion of the lanthanides with a three non-f valence electron D-2([f(n)] s(2)d(1)) as compared to a two non-f(1)S([f(n+1)] s(2)d(0)) electronic configuration. Among all the lanthanides, only D-2([f(n)] s(2)d(1)) La, Ce, Gd, and Lu may react exergonically with methane; the lowest activation barrier is calculated for La and Ce atoms (Delta G double dagger = 25 kcal . mol(-1)). A semiquantitative analysis from a simple two-state model shows that an indirect participation of the 4f-orbitals is expected to modify the [4f(n+1)] s(2)d(0) reactivity of the Pr, Nb, and Tb-Tm lanthanides as a configuration mixing with the [4f(n)] s(2)d(1) electronic configuration may be quite effective. The most interesting result obtained in this work is for the insertion of the [5f(0)] 7s(2)6d(2) thorium into the methane C-H bond, where an essentially barrierless (Delta G double dagger = 0.3 kcal . mol(-1)) and considerably exergonic (Delta G = - 38 kcal . mol(-1)) reaction is predicted to occur. The performance of a Th neutral atom overshadows the catalytic power of the best of the lanthanides, Ce, in the [4f(0)] 6s(2)5d(2) electronic configuration. One of the most important factors for this effectiveness comes from the 5f-orbital radial overlap onto the 7s6d valence shell, which enhances the ability of thorium as a catalyst for methane C-H bond activation.
机译:已经进行了密度泛函理论(DFT)和Hartree-Fock有效核心势能计算,以研究中性f-嵌段原子对甲烷C-H键活化的反应性。对于所有镧系元素和act系元素的studied原子,都研究了甲烷脱氢过程的第一步,该步骤对应于氧化插入。与DFT / B3LYP相关的结果表明,与三个非价电子D-2([f(n)] s(2)d(1))相比,镧系元素的插入更有利的动力学和热化学条件。两个非f(1)S([f(n + 1)] s(2)d(0))电子配置。在所有的镧系元素中,只有D-2([f(n)] s(2)d(1))La,Ce,Gd和Lu会与甲烷剧烈反应。对于La和Ce原子计算出最低的激活势垒(Delta G双匕首= 25 kcal。mol(-1))。从简单的两个状态模型进行的半定量分析表明,预期4f轨道的间接参与会改变Pr,Nb和Tb的[4f(n + 1)] s(2)d(0)反应性-Tm镧系元素作为与[4f(n)] s(2)d(1)电子结构混合的结构可能非常有效。在这项工作中获得的最有趣的结果是将[5f(0)] 7s(2)6d(2)insertion插入甲烷CH键,其中基本上无障碍(δG双匕首= 0.3 kcal。mol( -1)),并且预计会发生相当大的能量(Delta G =-38 kcal。mol(-1))反应。在[4f(0)] 6s(2)5d(2)电子配置中,Th中性原子的性能使最好的镧系元素Ce的催化能力黯然失色。达到这一效果的最重要因素之一是5f-轨道径向重叠到7s6d价壳上,这增强了as作为甲烷C-H键活化催化剂的能力。

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