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首页> 外文期刊>Organometallics >Understanding the preference for the coplanarity of alkenyl and carbonyl ligands in eta(1)-alkenyl transition-metal complexes: A simple molecular orbital approach and ab initio calculations
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Understanding the preference for the coplanarity of alkenyl and carbonyl ligands in eta(1)-alkenyl transition-metal complexes: A simple molecular orbital approach and ab initio calculations

机译:了解在eta(1)-烯基过渡金属络合物中烯基和羰基配体的共平面性的偏好:一种简单的分子轨道方法和从头算

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摘要

The preference for coplanarity of alkenyl and carbonyl ligands in yl alkenyl transition-metal complexes can be understood in terms of a simple molecular orbital model in which the nonbonding metal t(2g) orbitals interact with the pi* orbitals of these ligands. Such back-bonding interactions are most favorable when the alkenyl and carbonyl ligands are coplanar, as all three t(2g) orbitals are utilized by the ligands. Optimized geometries obtained from ab initio calculations for a variety of ruthenium alkenyl complexes show the preference for alkenyl-carbonyl planarity when only one or two carbonyl ligands are present in the complex. In these complexes the energy required to rotate the alkenyl ligand is calculated to be approximately 7 kcal/mol, while in complexes with three or more carbonyl ligands this energy decreases due to competition by carbonyl ligands for favorable back-bonding interactions. This competition effectively rules out any preferential alkenyl-carbonyl arrangement, and instead steric interactions dominate. The role of the pi-donor chloride ligand in stabilizing the planar alkenyl-carbonyl arrangement was also investigated. [References: 39]
机译:可以通过简单的分子轨道模型来理解在烯基过渡金属络合物中烯基和羰基配体的共平面性,其中非键金属t(2g)轨道与这些配体的pi *轨道相互作用。当烯基和羰基配体共面时,这种背键相互作用最为有利,因为所有三个t(2g)轨道均被配体利用。从头算得到的各种钌烯基配合物的最佳几何结构显示,当配合物中仅存在一个或两个羰基配体时,偏爱烯基-羰基平面度。在这些配合物中,旋转烯基配体所需的能量经计算为约7kcal / mol,而在具有三个或更多个羰基配体的配合物中,该能量由于羰基配体竞争有利的后键相互作用而降低。这种竞争有效地排除了任何优先的烯基-羰基排列,而是空间相互作用占主导。还研究了π-给体氯化物配体在稳定平面烯基-羰基排列中的作用。 [参考:39]

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