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Supramolecular polymers with tunable topologies via hierarchical coordination-driven self-assembly and hydrogen bonding interfaces

机译:通过分级配位驱动的自组装和氢键界面可调整拓扑的超分子聚合物

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摘要

A powerful strategy to obtain complex supramolecular materials is the bottom-up construction of noncovalently bound materials by hierarchical self-assembly. This assembly process involves stepwise, uniform increases to the architectural complexity of a substrate, starting from discrete precursors and growing in dimensionality through controlled reactivity to a final product. Herein, two orthogonal processes are exploited: coordination-driven self-assembly and hydrogen bonding. The former relies on the predictable formation of metal–ligand bonds wherein the directionalities of the rigid precursors used determines the structural outcome. The latter uses 2-ureido-4-pyrimidinone interfaces that are structurally robust by virtue of the quadruple hydrogen bonding that can occur between subunits. By combining these two processes into a single system, it is possible to generate hierarchical materials that preserve the attractive tunability associated with discrete supramolecular coordination complexes. For instance, the synthesis of a one-dimensional chain comprising linked metalla-rhomboids is readily adapted to a 2D cross-linked hexagonal network by simply selecting a different metal acceptor precursor as an assembly component. The specific interactions between subunits, in this case platinum(II)-pyridyl bonds and the quadruple H-bonding of ureidopyrimidinone, are unchanged, establishing a unique strategy to obtain supramolecular polymers with marked topological differences with minimal synthetic redesign. In addition, the structural rigidity imposed by the inclusion of the platinum metallacycles serves to minimize the formation of cyclic oligomers, increasing the efficacy of formation and improving the properties of the resultant materials. Furthermore, this study taps the potential of organoplatinum(II) metallacycles in materials science.
机译:一种获得复杂的超分子材料的有效策略是通过分层自组装自下而上构造非共价结合的材料。该组装过程包括逐步地,均匀地增加基板的结构复杂性,该过程从离散的前体开始,并通过对最终产品的受控反应性而在尺寸上不断增长。本文中,利用了两个正交过程:配位驱动的自组装和氢键。前者依赖于金属-配体键的可预测形成,其中所使用的刚性前体的方向决定了结构的结果。后者使用2-脲基-4-嘧啶酮界面,该界面由于在亚基之间可能发生四重氢键而结构坚固。通过将这两个过程合并为一个系统,可以生成保留与离散的超分子配位化合物相关的有吸引力的可调性的分层材料。例如,通过简单地选择不同的金属受体前体作为组装组分,包含连接的金属-菱形的一维链的合成容易适应2D交联的六边形网络。亚基之间的特定相互作用(在本例中为铂(II)-吡啶基键和脲基嘧啶酮的四重H键)保持不变,从而建立了独特的策略,可通过最少的合成重新设计获得具有显着拓扑差异的超分子聚合物。另外,通过包含铂金属金属环而强加的结构刚度用于最小化环状低聚物的形成,增加了形成的效率并改善了所得材料的性能。此外,这项研究在材料科学中挖掘了有机铂(II)金属环化合物的潜力。

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