Rogachev Andrey Yu, Zhou Zheng, Liu Shuyang, Wei Zheng, Schaub Tobias A, Jasti Ramesh, Petrukhina Marina A
Department of Chemistry, Illinois Institute of Technology Chicago IL 60616 USA
Department of Chemistry, University at Albany, State University of New York Albany NY 12222 USA
Chem Sci. 2021 Apr 12;12(19):6526-6535. doi: 10.1039/d1sc00713k.
The consequences of four-electron addition to [8]cycloparaphenylene ([8]CPP, ) have been evaluated crystallographically, revealing a significant core deformation. The structural analysis exposes an elliptical distortion observed upon electron transfer, with the deformation parameter (D.P.) increased by 28% in comparison with neutral [8]CPP. The C-C bond length alteration pattern also indicates a quinoidal structural rearrangement upon four-fold reduction. The large internal cavity of [8]CPP allows the encapsulation of two {K(THF)} cationic moieties with two additional cations bound externally in the solid-state structure of [{K(THF)}([8]CPP)]. The experimental structural data have been used as a benchmark for the comprehensive theoretical description of the geometric changes and electronic properties of the highly-charged [8]CPP nanohoop in comparison with its neutral parent. While neutral [8]CPP and the [8]CPP anion clearly show aromatic behavior of all six-membered rings, subsequent addition of two more electrons completely reverses their aromatic character to afford the highly-antiaromatic [8]CPP anion, as evidenced by structural, topological, and magnetic descriptors. The disentanglement of electron transfer from metal binding effects allowed their contributions to the overall core perturbation of the negatively-charged [8]CPP to be revealed. Consequently, the internal coordination of potassium cations is identified as the main driving force for drastic elliptic distortion of the macrocyclic framework upon reduction.
通过晶体学方法评估了向[8]环对亚苯基([8]CPP)中添加四个电子的后果,结果显示出显著的核心变形。结构分析揭示了电子转移时观察到的椭圆形畸变,与中性[8]CPP相比,变形参数(D.P.)增加了28%。C-C键长的变化模式也表明在四重还原时发生了醌型结构重排。[8]CPP的大内腔允许在[{K(THF)}([8]CPP)]的固态结构中封装两个{K(THF)}阳离子部分,并在外部结合另外两个阳离子。与中性母体相比,实验结构数据已被用作对高电荷[8]CPP纳米环的几何变化和电子性质进行全面理论描述的基准。虽然中性[8]CPP和[8]CPP阴离子清楚地显示出所有六元环的芳香行为,但随后再添加两个电子会完全逆转它们的芳香特性,从而得到高度反芳香的[8]CPP阴离子,这由结构、拓扑和磁性描述符所证实。电子转移与金属结合效应的解缠,使得它们对带负电荷的[8]CPP整体核心扰动的贡献得以揭示。因此,钾阳离子的内部配位被确定为还原时大环框架剧烈椭圆畸变的主要驱动力。