在σ-和π-孔键的控制下,离子离子自组合
Andrea Pizzi1, Arun Dhaka1, Roberta Beccaria1
1NFMLab, Department of Chemistry, Materials, Chemical Engineering "Giulio Natta", Politecnico di Milano, via Mancinelli 7, I-20131 Milano, Italy. giuseppe.resnati@polimi.it.
Chemical Society reviews
|June 13, 2024
概括
特定的吸引力,如σ-孔和π-孔键,克服类似电荷排斥,使稳定的离子自我组装. 这些相互作用在生物制药学和材料科学中至关重要.
科学领域:
- 超分子化学 超分子化学
- 化学物理 化学物理
- 材料科学 材料科学 材料科学
背景情况:
- 静电相互作用通常涉及相反电荷之间的吸引力和相似电荷之间的排斥.
- 虽然这与直觉相反,但同样带电的离子之间的吸引力越来越被认可.
- 键 (HBs) 是一个众所周知的例子,驱动这样的组件.
研究的目的:
- 审查 σ 孔和 π 孔键在克服相似电荷之间的静电排斥中的作用.
- 讨论这些键如何驱动离子的自我组装成各种 adducts.
- 突出这些相互作用在生物制药学和材料科学中的意义.
主要方法:
- 关于非共价相互作用的现有文献的审查.
- 对定义σ洞和π洞的电子特性进行分析.
- 检查不同阶段和系统中由这些相互作用驱动的自组装过程.
主要成果:
- σ孔和π孔键有助于形成稳定的离子和离子和离子 adducts.
- 这些相互作用使离子能够组装成离散和扩展 (1D,2D,3D) 的结构.
- 附加物在固态阶段和极性溶剂中通常是稳定的,但在气态阶段的稳定性较低.
结论:
- σ孔和π孔键在指导同电荷自组合方面至关重要,挑战了经典的静电范式.
- 这些相互作用适用于周期表中广泛的离子.
- 了解这些力量是设计功能分子材料和理解生物制药系统的关键.
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