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A Microscopic Model for Helical Twisting Power by the Optical Isomers of an Octahedral Metal Complex

机译:八面体金属配合物的旋光异构体的螺旋扭曲能力的微观模型

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A computational approach to the evaluation of helical twisting powers (HTP) of chiral metal complexes of [Ru(blade)_2(backbone)] type is presented. The dopant contains helically attached "blade" ligands and an elongated "backbone" ligand, and some remarkably powerful examples have been reported. In this work, the observed HTP is interpreted in terms of a microscopic interaction of a dopant and host molecules with atomistic details. For this purpose, the stable structure of a triad system comprising a dopant and two host molecules was obtained by geometry optimization using Gaussian03. As a result, the host molecules interacted attractively with the dopant, being twisted in the same direction as observed experimentally. Interaction energy was assessed as a function of the dihedral angle between the two host molecules, leading to a quadratic dependence with a minimum at the equilibrium twisting angle of —32°. Based on this, the expression was derived, in which helical twisting power was given in terms of the equilibrium twisting angle of a pair of strongly interacting host molecules.
机译:提出了一种计算[Ru(blade)_2(backbone)]型手性金属配合物的螺旋扭曲力(HTP)的计算方法。该掺杂剂包含螺旋连接的“叶片”配体和细长的“骨架”配体,并且已经报道了一些非常有力的例子。在这项工作中,观察到的HTP是根据掺杂剂和主体分子在原子细节上的微观相互作用来解释的。为此,通过使用高斯O 3的几何优化来获得包括掺杂剂和两个主体分子的三单元组系统的稳定结构。结果,主体分子与掺杂剂有吸引力地相互作用,以与实验观察到的相同方向扭曲。相互作用能被评估为两个主体分子之间二面角的函数,导致二次依赖性,在平衡扭转角为-32°时最小值最小。基于此,导出了表达式,其中根据一对强烈相互作用的主体分子的平衡扭曲角给出了螺旋扭曲力。

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