喹啉和氯硝基苯甲酸盐/晶体系统中的氢键连续性。

IF 3.7 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Jakub Radek Štoček, Jan Blahut, Simona Chalupná, Jan Čejka, Sille Štěpánová, Václav Kašička, Michal Hušák, Martin Dračínský
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引用次数: 0

摘要

本研究探讨了由喹啉和氯硝基苯甲酸组成的六种双组分固体体系中的氢键几何形状。采用传统的独立原子模型和最新的 Hirshfeld 原子重构法进行了新的 X 射线衍射研究,后者提供了精确的氢原子位置。这些体系可分为盐类(氢原子转移到喹啉氮上)、共晶体(氢原子由酸保留)和中间结构。固态核磁共振实验证实了 X 射线衍射得出的 H-N 间距。使用包括混合 B3LYP 和 PBE0 在内的五种函数进行的 DFT 计算显示,氢键的能量曲线各不相同,不同函数之间存在显著差异。这些计算显示,根据所用函数的不同,对盐结构或共晶体结构的偏好也不同。包含核量子效应的路径积分分子动力学模拟显示了显著的氢原子分散,形成了氢键连续体,并提供了与实验结果非常一致的 N-H 平均距离。这种全面的实验和理论方法凸显了多组分固体的复杂性。该研究强调,由于氢原子在氢键中往往明显偏离,因此将其划分为盐或共晶体往往是不够的。这一见解对于理解和预测此类系统在制药应用中的行为至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Hydrogen-Bond Continuum in the Salt/Cocrystal Systems of Quinoline and Chloro-Nitrobenzoic Acids

The Hydrogen-Bond Continuum in the Salt/Cocrystal Systems of Quinoline and Chloro-Nitrobenzoic Acids

The Hydrogen-Bond Continuum in the Salt/Cocrystal Systems of Quinoline and Chloro-Nitrobenzoic Acids

This study investigates the hydrogen-bond geometry in six two-component solid systems composed of quinoline and chloro-nitrobenzoic acids. New X-ray diffraction studies were conducted using both the conventional independent-atom model and the more recent Hirshfeld atom-refinement method, with the latter providing precise hydrogen-atom positions. The systems can be divided into salts (the hydrogen atom transferred to the quinoline nitrogen), cocrystals (the hydrogen atom retained by the acid), and intermediate structures. Solid-state NMR experiments corroborated the X-ray diffraction-derived H−N distances. DFT calculations, using five functionals including hybrid B3LYP and PBE0, showed varying energy profiles for the hydrogen bonds, with notable differences across functionals. These calculations revealed different preferences for salt or cocrystal structures, depending on the functional used. Path-integral molecular dynamics simulations incorporating nuclear quantum effects demonstrated significant hydrogen-atom delocalization, forming a hydrogen-bond continuum, and provided average N−H distances in excellent agreement with experimental results. This comprehensive experimental and theoretical approach highlights the complexity of multicomponent solids. The study emphasizes that the classification into salts or cocrystals is frequently inadequate, as the hydrogen atom is often significantly delocalized in the hydrogen bond. This insight is crucial for understanding and predicting the behavior of such systems in pharmaceutical applications.

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来源期刊
Chemistry - A European Journal
Chemistry - A European Journal 化学-化学综合
CiteScore
7.90
自引率
4.70%
发文量
1808
审稿时长
1.8 months
期刊介绍: Chemistry—A European Journal is a truly international journal with top quality contributions (2018 ISI Impact Factor: 5.16). It publishes a wide range of outstanding Reviews, Minireviews, Concepts, Full Papers, and Communications from all areas of chemistry and related fields. Based in Europe Chemistry—A European Journal provides an excellent platform for increasing the visibility of European chemistry as well as for featuring the best research from authors from around the world. All manuscripts are peer-reviewed, and electronic processing ensures accurate reproduction of text and data, plus short publication times. The Concepts section provides nonspecialist readers with a useful conceptual guide to unfamiliar areas and experts with new angles on familiar problems. Chemistry—A European Journal is published on behalf of ChemPubSoc Europe, a group of 16 national chemical societies from within Europe, and supported by the Asian Chemical Editorial Societies. The ChemPubSoc Europe family comprises: Angewandte Chemie, Chemistry—A European Journal, European Journal of Organic Chemistry, European Journal of Inorganic Chemistry, ChemPhysChem, ChemBioChem, ChemMedChem, ChemCatChem, ChemSusChem, ChemPlusChem, ChemElectroChem, and ChemistryOpen.
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