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氟代 3-芳基硫代-4,4'-联吡啶的对映体拆分:高效液相色谱中硫属键和π-孔键的深入了解。

Enantioseparation of fluorinated 3-arylthio-4,4'-bipyridines: Insights into chalcogen and π-hole bonds in high-performance liquid chromatography.

机构信息

Istituto di Chimica Biomolecolare ICB, CNR, Sede secondaria di Sassari, Traversa La Crucca 3, Regione Baldinca, 07100 Li Punti, Sassari, Italy.

CNR-ISTM, Istituto di Scienze e Tecnologie Molecolari, via C. Golgi 19, 20133 Milano, Italy; Istituto Lombardo Accademia di Scienze e Lettere, via Brera 28, 20121 Milano, Italy.

出版信息

J Chromatogr A. 2018 Sep 14;1567:119-129. doi: 10.1016/j.chroma.2018.06.060. Epub 2018 Jun 25.

Abstract

A chalcogen bond (ChB) is a σ-hole-based noncovalent interaction between a Lewis base and an electrophilic element of Group VI (O, S, Se, Te), which behaves as a Lewis acid. Recently, we demonstrated that halogen bond, the more familiar σ-hole-based interaction, is able to promote the enantioseparation of chiral compounds in HPLC environment. On this basis, an investigation to detect ChBs, functioning as stereoselective secondary interactions for HPLC enantioseparations, was started off and the results of this study are described herein. Our investigation also focused on the impact of the perfluorinated aromatic ring as a π-hole donor recognition site. For these purposes, seven atropisomeric fluorinated 3-arylthio-4,4'-bipyridines were designed, synthesized and used as potential ChB donors (ChBDs) with two cellulose-based chiral stationary phases (CSPs) containing carbonyl groups as ChB acceptors (ChBAs). In addition, one and two analogues lacking fluorine and sulphur, respectively, were prepared as terms of comparison. The design of the test analytes was computationally guided. In this regard, electrostatic potentials (EPs) associated with σ- and π-holes were computed and the atomic contributions to the sulphur EP maxima were derived using a molecular space partitioning in terms of Bader's atomic basins. This procedure is akin to the Bader-Gatti electron density source function (SF) decomposition, yet suitably extended to the EP field. For five 3-substituted-4,4'-bipyridines, thermodynamic parameters were derived from van't Hoff plots. Finally, the use of molecular dynamic (MD) simulation to model ChB in cellulose-analyte complexes was explored. Evidences that σ-hole and π-hole interactions can jointly drive HPLC enantioseparations through recognition sites generated by electronic charge depletion emerged from both experimental results and theoretical data.

摘要

一个硫属键(ChB)是一种基于 σ 空穴的非共价相互作用,发生在路易斯碱和第六族的亲电元素(O、S、Se、Te)之间,该亲电元素表现为路易斯酸。最近,我们证明了卤键,即更为人熟悉的基于 σ 空穴的相互作用,能够在 HPLC 环境中促进手性化合物的对映体分离。在此基础上,我们开始研究硫属键,将其作为 HPLC 对映体分离的立体选择性次级相互作用,并在此描述了该研究的结果。我们的研究还集中在全氟芳环作为 π 空穴供体识别位点的影响上。为此,设计、合成了七个手性的氟化 3-芳基硫代-4,4'-联吡啶,并将其用作潜在的硫属键供体(ChBD),与两个含有羰基的纤维素手性固定相(CSP)作为硫属键受体(ChBA)一起使用。此外,还分别制备了一个和两个缺乏氟和硫的类似物作为比较项。测试分析物的设计是通过计算指导的。在这方面,计算了与 σ 空穴和 π 空穴相关的静电势(EP),并使用基于 Bader 原子盆地的分子空间划分,推导出硫 EP 最大值的原子贡献。这个过程类似于 Bader-Gatti 电子密度源函数(SF)分解,但适当地扩展到 EP 领域。对于五个 3-取代的 4,4'-联吡啶,从范特霍夫图中得出了热力学参数。最后,探索了使用分子动力学(MD)模拟来模拟纤维素-分析物复合物中的硫属键。实验结果和理论数据都表明,σ 空穴和 π 空穴相互作用可以通过电子电荷耗尽产生的识别位点共同驱动 HPLC 对映体分离。

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