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首页> 外文期刊>Organometallics >Alkyl substituent effects on reductive elimination reactions in zirconocene alkyl hydride complexes. Manipulation of the alkyl steric environment allows the synthesis of a zirconocene dinitrogen complex
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Alkyl substituent effects on reductive elimination reactions in zirconocene alkyl hydride complexes. Manipulation of the alkyl steric environment allows the synthesis of a zirconocene dinitrogen complex

机译:烷基取代基对锆茂烷基氢化物络合物中还原消除反应的影响。烷基空间环境的操作可以合成锆茂二氮配合物

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The rate of reductive elimination as a function of alkyl ligand has been measured for a series of zirconocene alkyl hydride complexes, Cp*Cp"Zr(R)H (Cp* = eta(5)-CMe5, Cp" = eta(5)C(5)H(3)-1,3-(SiMe3)(2), R = CH3, CH2(CH2)CH3, CH2(CH2)(6)CH3, (CH2C6H11)-C-c, CH2CHMe2, CH2CMe3 where the steric disposition of the alkyl ligand has been systematically varied. The rate of reductive elimination increases modestly as the steric bulk of the alkyl ligand is increased. This trend is attributed to ground state destabilization arising from unfavorable steric interactions between the alkyl ligand and the cyclopentadienyl substituents. The effect is magnified when more voluminous cyclopentadienyl. ligands are incorporated into the metallocene framework. Thus, the Cp*Cp'''Zr(R)H (Cp = eta(5)-C5H2-1,2,4-(SiMe3)(3), R = CH3, CH2(CH2)(2)CH3, CH2(CH2)(6)CH3) series of alkyl hydride complexes lose alkane more readily than the corresponding Cp*Cp"Zr(R)H complexes. In addition, the rate of reductive elimination has also been examined for CP*Cp"Zr(Ph)(H) and CP*Cp"Zr(CH2Ph)H (Ph = C6H5) and is slower than the alkyl hydride series. The sluggish rates of reductive elimination are a result of ground state stabilization imparted by a strong zirconium-phenyl bond and by eta(2) coordination of the benzyl ligand, respectively. This interaction, along with the solid state structure of Cp*Cp"Zr(CH3)H, has been characterized by X-ray diffraction. The kinetic data led to the synthesis of CP*Zr-2(CH2CMe3)H, which undergoes reductive elimination of alkane and coordination of dinitrogen. [References: 60]
机译:对于一系列锆茂烷基氢化物配合物,Cp * Cp“ Zr(R)H(Cp * = eta(5)-CMe5,Cp” = eta(5),已测量了还原消除速率与烷基配体的关系。 C(5)H(3)-1,3-(SiMe3)(2),R = CH3,CH2(CH2)CH3,CH2(CH2)(6)CH3,(CH2C6H11)-Cc,CH2CHMe2,CH2CMe3其中烷基配体的空间位置发生了系统性的变化,随着烷基配体的空间体积的增加,还原消除速率会适度增加,这种趋势归因于烷基配体与环戊二烯基取代基之间不利的空间相互作用而导致的基态失稳当在金属茂骨架中引入更多的环戊二烯基配体时,这种效应会放大,因此,Cp * Cp'''Zr(R)H(Cp = eta(5)-C5H2-1,2,4-(SiMe3 )(3),R = CH 3,CH 2(CH 2)(2)CH 3,CH 2(CH 2)(6)CH 3)系列的烷基氢化物配合物比相应的Cp * Cp″ Zr(R)H配合物更容易失去烷烃。另外,还原性lim灭率还检测了CP * Cp″ Zr(Ph)(H)和CP * Cp″ Zr(CH2Ph)H(Ph = C6H5)的反应,并且比烷基氢化物系列慢。还原消除反应的缓慢速率是基态稳定化的结果,该稳定化分别是由强的锆-苯基键和苄基配体的eta(2)配位所赋予的。通过X射线衍射表征了这种相互作用以及Cp * Cp“ Zr(CH3)H的固态结构。动力学数据导致CP * Zr-2(CH2CMe3)H的合成经历了还原消除烷烃和二氮配位[参考文献:60]

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