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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >A density functional study of oxygen atom transfer reactions between biological oxygen atom donors and molybdenum(IV) bis(dithiolene) complexes
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A density functional study of oxygen atom transfer reactions between biological oxygen atom donors and molybdenum(IV) bis(dithiolene) complexes

机译:生物氧原子供体与钼(IV)双(二硫代烯)配合物之间氧原子转移反应的密度泛函研究

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Density functional calculations have been used to investigate oxygen atom transfer reactions from the biological oxygen atom donors trimethylamine N-oxide (Me3NO) and dimethyl sulfoxide (DMSO) to the molybdenum(IV) complexes [MoO(mnt)(2)](2-) and [Mo(OCH3)(mnt)(2)](-) (mnt = maleonitrile-1,2-dithiolate), which may serve as models for mononuclear molybdenum enzymes of the DMSO reductase family. The reaction between [MoO(mnt)(2)](2-) and trimethylamine N-oxide was found to have an activation energy of 72 kJ/mol and proceed via a transition state (TS) with distorted octahedral geometry, where the MOO is bound through the oxygen to the molybdenum atom and the N-O bond is considerably weakened. The computational modeling of the reactions between dimethyl sulfoxide (DMSO) and [MoO(mnt)(2)](2-) or [Mo(OCH3)(mnt)(2)](-) indicated that the former is energetically unfavorable while the latter was found to be favorable. The addition of a methyl group to [MoO(mnt)(2)](2-) to form the corresponding des-oxo complex not only lowers the relative energy of the products but also lowers the activation energy. In addition, the reaction with [Mo(OCH3)(mnt)(2)](-) proceeds via a TS with trigonal prismatic geometry instead of the distorted octahedral TS geometry modeled for the reaction between [MoO(mnt)(2)](2-) and Me3NO. [References: 58]
机译:密度泛函计算已用于研究从生物氧原子供体三甲胺N-氧化物(Me3NO)和二甲基亚砜(DMSO)到钼(IV)配合物[MoO(mnt)(2)](2- )和[Mo(OCH3)(mnt)(2)](-)(mnt =马来腈-1,2-二硫代硫酸盐),可以用作DMSO还原酶家族的单核钼酶的模型。发现[MoO(mnt)(2)](2-)与三甲胺N-氧化物之间的反应的活化能为72 kJ / mol,并通过具有扭曲八面体几何形状的过渡态(TS)进行,其中MOO通过氧与钼原子键合,NO键被大大削弱。二甲基亚砜(DMSO)与[MoO(mnt)(2)](2-)或[Mo(OCH3)(mnt)(2)](-)之间的反应的计算模型表明,前者在能量上不利,而后者被认为是有利的。在[MoO(mnt)(2)](2-)上添加甲基以形成相应的脱氧配合物不仅降低了产物的相对能,而且降低了活化能。另外,与[Mo(OCH3)(mnt)(2)](-)的反应是通过具有三角棱柱几何形状的TS进行的,而不是为[MoO(mnt)(2)]之间的反应建模的扭曲的八面体TS几何形状的反应(2-)和Me3NO。 [参考:58]

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