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非水毛细管电泳和量子化学计算在氮杂薁酸碱和电泳性质研究中的应用。

Nonaqueous capillary electrophoresis and quantum chemical calculations applied to investigation of acid-base and electromigration properties of azahelicenes.

机构信息

Institute of Organic Chemistry and Biochemistry, The Czech Academy of Sciences, Czech Republic.

出版信息

Electrophoresis. 2022 Mar;43(5-6):696-707. doi: 10.1002/elps.202100331. Epub 2021 Dec 30.

Abstract

Nonaqueous capillary electrophoresis (NACE) using methanol (MeOH) as a solvent of the BGEs and quantum mechanical density functional theory (DFT) have been applied to determine the thermodynamic acidity (ionization) constants (pK ) of mono- and diaza[5]helicenes, mono- and diaza[6]helicenes, and their dibenzo derivatives in MeOH and water. First, the mixed acidity constants, , of ionogenic pyridinium groups of azahelicenes and their derivatives in MeOH were obtained by nonlinear regression analysis of pH dependence of their effective electrophoretic mobilities. The effective mobilities were measured by NACE in a large series of methanolic BGEs within a wide conventional pH range (pH 1.6-12.0) and at ambient temperature (21-26°C) in a home-made CE device. Prior to mixed acidity constant calculation, the effective mobilities were corrected to reference temperature (25°C) and constant ionic strength (25 mM). Then, the mixed acidity constants were recalculated to the thermodynamic acidity constants pK by the Debye-Hückel theory of nonideality of electrolyte solutions. Finally, from the methanolic thermodynamic pK values, the aqueous thermodynamic constants were estimated using the empirical relations between methanolic and aqueous acidity constants derived for structurally related pyridine derivatives. Depending on the number and position of the nitrogen atoms in their molecules, the analyzed azahelicenes were found to be weak to moderate bases with methanolic pK in the range 2.01-8.75 and with aqueous in the range 1.67-8.28. The thermodynamic pK obtained by the DFT calculations were in a good agreement with those determined experimentally by NACE.

摘要

非水毛细管电泳 (NACE) 采用甲醇 (MeOH) 作为 BGE 的溶剂,以及量子力学密度泛函理论 (DFT),已被应用于测定单氮杂[5]轮烯、单氮杂[6]轮烯及其二苯并衍生物在 MeOH 和水中的热力学酸度 (离解) 常数 (pK)。首先,通过对其有效电泳迁移率随 pH 值变化的非线性回归分析,获得了氮杂轮烯及其衍生物中离解吡啶基团的混合酸度常数 。在自制 CE 装置中,在宽常规 pH 值范围 (pH 1.6-12.0) 和环境温度 (21-26°C) 下,通过 NACE 在一系列甲醇 BGE 中测量有效迁移率。在计算混合酸度常数之前,将有效迁移率校正至参考温度 (25°C) 和恒定离子强度 (25 mM)。然后,根据电解质溶液非理想的 Debye-Hückel 理论,将混合酸度常数重新计算为热力学酸度常数 pK。最后,从甲醇热力学 pK 值,使用从结构相关吡啶衍生物推导出的甲醇和水酸度常数之间的经验关系,估计水热力学常数。根据其分子中氮原子的数量和位置,所分析的氮杂轮烯被发现是弱至中等碱性的,甲醇 pK 值在 2.01-8.75 范围内,水 pK 值在 1.67-8.28 范围内。通过 DFT 计算得到的热力学 pK 值与通过 NACE 实验确定的热力学 pK 值吻合良好。

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