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金属有机笼中的手性自分类、自发拆分和分级自组装

Chiral Self-Sorting, Spontaneous Resolution, and Hierarchical Self-Assembly in Metal-Organic Cages.

作者信息

Ghorai Sandipan, Natarajan Ramalingam

机构信息

Organic and Medicinal Chemistry Division, CSIR-Indian Institute of Chemical Biology, 4 Raja S C Mullick Road, Kolkata, 700032, India.

Academy of Scientific Innovative Research (AcSIR), Ghaziabad, 201002, India.

出版信息

Small. 2024 Sep;20(36):e2400842. doi: 10.1002/smll.202400842. Epub 2024 May 6.

Abstract

The ability to collectively program chiral recognition and the hierarchical self-assembly of molecular and supramolecular building blocks into complex higher-order superstructures is a significant goal in supramolecular chemistry. Metal-organic cages are excellent model systems to examine chiral self-sorting and build hierarchical self-assembly. Herein, details on how limiting the conformational flexibility and incorporating hydrogen bonding functional groups in the ligands can influence chiral self-sorting and hierarchical self-assembly of metal-organic cages are reported. The urea-functionalized axially chiral bis-pyridyl ligands afford high-fidelity in chiral self-sorting in PdL cages, when they have fewer conformations. Ligand L1, with more conformations, affords mixture of heterochiral and homochiral cages (≈70:30). Among them, the heterochiral cage adopts unusual twisted conformation and self-assembles into 2D sheets, linked by anion coordination between urea and nitrate. Ligand L2, with fewer conformations, affords homochiral cages via high-fidelity chiral self-sorting. The choice of counter anions influences further self-sorting in the solid state: racemate with PF and spontaneously resolves conglomerate with BF . Urea-BF hydrogen bonding directs hierarchical self-assembly of the PdL metal-organic cages into super-cubic networks. The study introduces a new approach in hierarchical self-assembly of metal-organic cages into higher-order networks aided by hydrogen bonding anion coordination with functional ligands.

摘要

将手性识别以及分子和超分子构建单元的分级自组装共同编程为复杂的高阶超结构的能力,是超分子化学中的一个重要目标。金属有机笼是研究手性自分类和构建分级自组装的优秀模型体系。在此,报告了有关限制构象灵活性以及在配体中引入氢键官能团如何影响金属有机笼的手性自分类和分级自组装的详细信息。当具有较少构象时,脲官能化的轴向手性双吡啶配体在PdL笼的手性自分类中具有高保真度。具有更多构象的配体L1提供了杂手性和同手性笼的混合物(约70:30)。其中,杂手性笼采用不寻常的扭曲构象,并通过脲和硝酸盐之间的阴离子配位自组装成二维片层。具有较少构象的配体L2通过高保真手性自分类提供同手性笼。抗衡阴离子的选择影响固态中的进一步自分类:与PF形成外消旋体,与BF自发拆分聚集体。脲 - BF氢键将PdL金属有机笼的分级自组装引导成超立方网络。该研究介绍了一种在氢键阴离子与功能配体配位辅助下,将金属有机笼分级自组装成高阶网络的新方法。

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