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Deprotonation of C-Alkyl groups of cationic triruthenium clusters containing cyclometalated C-Alkylpyrazinium ligands: Experimental and computational studies

机译:含环金属化C-烷基吡嗪鎓配体的阳离子三钌簇的C-烷基的去质子化:实验和计算研究

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摘要

The C-alkyl groups of cationic triruthenium cluster complexes of the type [Ru3(μ-H)(μ-κ2N1,C2 -L)(CO)10]+ (HL represents a generic C-alkyl-N- methylpyrazium species) have been deprotonated to give kinetic products that contain unprecedented C-alkylidene derivatives and maintain the original edge-bridged decacarbonyl structure. When the starting complexes contain various C-alkyl groups, the selectivity of these deprotonation reactions is related to the atomic charges of the alkyl H atoms, as suggested by DFT/natural-bond orbital (NBO) calculations. Three additional electronic properties of the C-alkyl C-H bonds have also been found to correlate with the experimental regioselectivity because, in all cases, the deprotonated C-H bond has the smallest electron density at the bond critical point, the greatest Laplacian of the electron density at the bond critical point, and the greatest total energy density ratio at the bond critical point (computed by using the quantum theory of atoms in molecules, QTAIM). The kinetic decacarbonyl products evolve, under appropriate reaction conditions that depend upon the position of the C-alkylidene group in the heterocyclic ring, toward face-capped nonacarbonyl derivatives (thermodynamic products). The position of the C-alkylidene group in the heterocyclic ring determines the distribution of single and double bonds within the ligand ring, which strongly affects the stability of the neutral decacarbonyl complexes and the way these ligands coordinate to the metal atoms in the nonacarbonyl products. The mechanisms of these decacarbonylation processes have been investigated by DFT methods, which have rationalized the structures observed for the final products and have shed light on the different kinetic and thermodynamic stabilities of the reaction intermediates, thus explaining the reaction conditions experimentally required by each transformation. Copyright © 2013 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
机译:[Ru3(μ-H)(μ-κ2N1,C2-L)(CO)10] +类型的阳离子三钌簇复合物的C-烷基具有(HL表示一般的C-烷基-N-甲基吡嗪类)将其去质子化,得到动力学产物,其包含空前的C-亚烷基衍生物并保持原始的边缘桥联十羰基结构。当起始配合物包含各种C-烷基时,这些去质子化反应的选择性与烷基H原子的原子电荷有关,如DFT /天然键轨道(NBO)计算所建议的。还发现了C-烷基CH键的三个附加电子特性与实验区域选择性相关,因为在所有情况下,去质子化的CH键在键的临界点具有最小的电子密度,在键的临界点具有最大的拉普拉斯电子密度。键临界点,以及键临界点处的最大总能量密度比(通过使用分子中原子的量子理论QTAIM计算)。在取决于杂环中C-亚烷基基团的位置的适当反应条件下,动力学十羰基产物向着封端的九碳羰基衍生物(热力学产物)发展。 C-亚烷基在杂环中的位置决定了配体环内单键和双键的分布,这强烈影响中性十羰基配合物的稳定性以及这些配体与九碳羰基产物中金属原子配位的方式。这些十羰基化过程的机理已通过DFT方法进行了研究,这些方法合理化了最终产物的结构,并阐明了反应中间体的不同动力学和热力学稳定性,从而解释了每个转化实验所需的反应条件。版权所有©2013 WILEY-VCH Verlag GmbH&Co.KGaA,Weinheim。

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