超分子化学
分子
材料科学
线程(蛋白质序列)
配位复合体
纳米技术
模块化设计
配位几何学
铜
离子
自组装
水溶液中的金属离子
链烷
金属有机骨架
金属
超分子组装
配位聚合物
分子机器
化学
戒指(化学)
分子识别
组合化学
非共价相互作用
软质材料
铝
作者
Lin Geng,Xi-yan Liu,Yu‐Long Xie,San‐Tai Wang,Jian Hao,Laurent Ruhlmann,Wei‐Hui Fang
摘要
Controlled assembly of advanced mechanically interlocked architectures remains a major challenge in supramolecular chemistry. Inspired by the hard and soft acids and bases principle, we present a modular and hierarchical strategy for the synthesis of aluminum-based mechanically interlocked molecules (AlMIMs) assembled from four synergistic components. Aluminum ions generate robust macrocyclic frameworks through coordination with aromatic carboxylates, while adaptive nitrogen-donor ligands, in concert with structure-directing copper ions, promote axle threading and govern structural dimensionality. This approach creates a full structural library, from discrete [2]- and [3]rotaxanes to extended polyrotaxane networks, demonstrating broad versatility. Within the spatially confined macrocyclic cavity, copper ions preferentially adopt a stable linear coordination geometry while remaining conformationally flexible outside the cavity to accommodate diverse coordination modes and aggregation states. This dual behavior cooperatively facilitates highly ordered assembly. Notably, the resulting AlMIMs exhibit remarkably enhanced third-order nonlinear optical responses, highlighting emergent properties arising from mechanical interlocking. This work underscores the power of merging coordination chemistry with supramolecular design, transcending conventional static paradigms by revealing how metal ion coordination can be dynamically modulated within precisely engineered supramolecular environments.
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