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首页> 外文期刊>The Journal of Organic Chemistry >Ligand-Controlled Reactivity, Selectivity, and Mechanism of Cationic Ruthenium-Catalyzed Hydrosilylations of Alkynes, Ketones, and Nitriles:A Theoretical Study
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Ligand-Controlled Reactivity, Selectivity, and Mechanism of Cationic Ruthenium-Catalyzed Hydrosilylations of Alkynes, Ketones, and Nitriles:A Theoretical Study

机译:配体控制的反应性,选择性和炔烃,酮和腈的阳离子钌催化的氢甲硅烷基化的理论研究

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Density functional theory calculations with the M06 functional have been performed on the reactivity, selectivity, and mechanism of hydrosilylations of alkynes, ketones, and nitriles catalyzed by cationic ruthenium complexes [CpRu(L)(MeCN)_2]~+, with L = PiPr_3 or MeCN. The hydrosilylation of alkynes with L = P~iPr_3 involves an initial silyl migration mechanism to generate the anti-Markovnikov product, in contrast to the Markovnikov product obtained with L = MeCN. The bulky phosphine ligand directs the silyl group to migrate to C_β of the alkyne. This explains the anti-Markovnikov selectivity of the catalyst with L = P~iPr_3. By contrast, the silane additions to either ketone or nitrile proceed through an ionic S_N2- Si outer-sphere mechanism, in which the substrate attacks the Si center. The P~iPr_3 ligand facilitates the activation of the Si-H bond to furnish a η~2-silane complex, whereas a η~1-silane complex is formed for the MeCN ligand. This property of the phosphine ligand enables the catalytic hydrosilylation of ketones and nitriles in addition to that of alkynes.
机译:用阳离子钌络合物[CpRu(L)(MeCN)_2]〜+催化,炔烃,酮和腈的硅烷基化反应的反应性,选择性和氢甲硅烷基化反应的机理,采用M06官能团进行密度泛函理论计算,L = PiPr_3或MeCN。与L = MeCN获得的马​​尔可夫尼可夫产物相反,L = P〜iPr_3的炔烃的氢化硅烷化涉及初始的甲硅烷基迁移机理以产生抗马尔可夫尼可夫产物。庞大的膦配体指导甲硅烷基迁移至炔烃的C_β。这解释了L = P〜iPr_3的催化剂的反马尔科夫尼科夫选择性。相比之下,向酮或腈中添加硅烷的过程是通过离子S_N2-Si外球机理进行的,在该机理中,基材侵蚀了Si中心。 P〜iPr_3配体有助于Si-H键的活化,从而提供η〜2-硅烷配合物,而MeCN配体则形成η〜1-硅烷配合物。膦配体的这种性质除了炔烃以外,还能够催化酮和腈的氢化硅烷化。

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