分子间力
化学
离子键合
晶体工程
卤化物
网状结缔组织
化学物理
多孔性
色散(光学)
多孔介质
化学工程
离子
纳米技术
结晶学
Crystal(编程语言)
星团(航天器)
晶体结构
分子内力
发色团
氢键
范德瓦尔斯力
化学键
无机化学
非共价相互作用
作者
Yu‐Lin Lu,Yishuo Chen,Hang Qu,Laiyu Zhang,Megan O’Shaughnessy,Thomas Fellowes,Andrew I. Cooper
标识
DOI:10.1038/s41557-026-02248-w
摘要
The solid-state assembly of crystalline porous materials is dictated by a balance between primary node-linker interactions and other weaker intermolecular forces. Metal-organic frameworks (MOFs) exploit highly directional and rigid coordination bonds that outweigh competing packing effects. This allows high-connectivity secondary building units (SBUs) to be assembled into a diverse range of architectures. By contrast, molecular crystals comprise weaker intermolecular interactions, making it challenging to realize porous packings with the highly connected reticular topologies achieved in MOFs. Here we introduce Coulombic aggregation as a means to generate primary SBU motifs. By suppressing intermolecular dispersion interactions, ammonium halide ion pairs aggregate into discrete multinuclear clusters that function as non-metal SBUs. Coupled with multitopic three-dimensional linkers, these ionic clusters create extended non-metal organic frameworks with diverse topologies, large voids and polar channels. This study extends reticular chemistry from directional chemical bonds to 'soft' ionic interactions, opening pathways to new porous materials and principles of solid-state assembly.
科研通智能强力驱动
Strongly Powered by AbleSci AI