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Ferrocene Orientation Determined Intramolecular Interactions Using Energy Decomposition Analysis

机译:二茂铁取向确定的分子内相互作用的能量分解分析

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摘要

Two very different quantum mechanically based energy decomposition analyses (EDA) schemes are employed to study the dominant energy differences between the eclipsed and staggered ferrocene conformers. One is the extended transition state (ETS) based on the Amsterdam Density Functional (ADF) package and the other is natural EDA (NEDA) based in the General Atomic and Molecular Electronic Structure System (GAMESS) package. It reveals that in addition to the model (theory and basis set), the fragmentation channels more significantly affect the interaction energy terms (ΔE) between the conformers. It is discovered that such an interaction energy can be absorbed into the pre-partitioned fragment channels so that to affect the interaction energies in a particular conformer of Fc. To avoid this, the present study employs a complete fragment channel—the fragments of ferrocene are individual neutral atoms. It therefore discovers that the major difference between the ferrocene conformers is due to the quantum mechanical Pauli repulsive energy and orbital attractive energy, leading to the eclipsed ferrocene the energy preferred structure. The NEDA scheme further indicates that the sum of attractive (negative) polarization (POL) and charge transfer (CL) energies prefers the eclipsed ferrocene. The repulsive (positive) deformation (DEF) energy, which is dominated by the cyclopentadienyle (Cp) rings, prefers the staggered ferrocene. Again, the cancellation results in a small energy residue in favour of the eclipsed ferrocene, in agreement with the ETS scheme. Further Natural Bond Orbital (NBO) analysis indicates that all NBO energies, total Lewis (no Fe) and lone pair (LP) deletion all prefer the eclipsed Fc conformer. The most significant energy preferring the eclipsed ferrocene without cancellation is the interactions between the donor lone pairs (LP) of the Fe atom and the acceptor antibond (BD*) NBOs of all C–C and C–H bonds in the ligand, LP(Fe)-BD*(C–C & C–H), which strongly stabilizes the eclipsed (D5h) conformation by −457.6 kcal·mol−1.
机译:基于两种非常不同的基于量子力学的量子能量分解分析(EDA)方案,研究了偏二茂铁和交错二茂铁构象异构体之间的主要能量差异。一种是基于阿姆斯特丹密度泛函(ADF)程序包的扩展过渡状态(ETS),另一种是基于通用原子和分子电子结构系统(GAMESS)程序包的自然EDA(NEDA)。结果表明,除了模型(理论和基础集)以外,碎片通道还显着影响构象异构体之间的相互作用能项(ΔE)。已经发现,这种相互作用能可以被吸收到预划分的片段通道中,从而影响Fc的特定构象异构体中的相互作用能。为避免这种情况,本研究采用了完整的碎片通道-二茂铁的碎片是单个中性原子。因此,发现二茂铁构象异构体之间的主要区别是由于量子机械泡利排斥能和轨道吸引能,导致了二茂铁黯淡的能量优选结构。 NEDA方案进一步表明,有吸引力的(负)极化(POL)和电荷转移(CL)能量之和更偏爱蚀过的二茂铁。由环戊二烯基(Cp)环支配的排斥(正)变形(DEF)能更喜欢交错的二茂铁。同样,取消排放会产生少量的能量残渣,有利于黯淡的二茂铁,这与ETS方案一致。进一步的自然键轨道(NBO)分析表明,所有NBO能量,总Lewis(无Fe)和孤对(LP)缺失均偏爱蚀过的Fc构象异构体。偏爱二茂铁时最重要的能量是Fe原子的供体孤对(LP)与配体LP和C–C和C–H所有键的受体反键(BD *)NBO之间的相互作用Fe)-BD *(CC和C–H),可通过-457.6 kcal·mol -1 稳定地使蚀过的(D5h)构象稳定。

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