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主体烷芳烃启发的大环:从扩展的主体烷芳烃到双子烷芳烃。

Pillararene-Inspired Macrocycles: From Extended Pillar[]arenes to Geminiarenes.

机构信息

International Joint Research Laboratory of Nano-Micro Architecture Chemistry, College of Chemistry, Jilin University, 2699 Qianjin Street, Changchun 130012, PR China.

出版信息

Acc Chem Res. 2022 Nov 1;55(21):3191-3204. doi: 10.1021/acs.accounts.2c00555. Epub 2022 Oct 20.

Abstract

chemistry since their establishment due to their innate functional features of molecular recognition and complexation. The rapid development of modern supramolecular chemistry has also significantly benefited from creating new macrocycles with distinctive geometries and properties. For instance, pillar[]arenes (pillarenes), a relatively young generation of star macrocyclic hosts among the well-established ones (e.g., crown ethers, cyclodextrins, cucurbiturils, and calixarenes), promoted a phenomenal research hotspot all over the world in the past decade. Although the synthesis, host-guest properties, and various supramolecular functions of pillarenes have been intensively studied, many objective limitations and challenges still cannot be ignored. For example, high-level pillar[]arenes ( > 7) usually do not possess applicable large-sized cavities due to structural folding and cannot be synthesized on a large scale because of the uncompetitive cyclization process. Furthermore, two functional groups must be covalently -connected to each repeating phenylene unit, which severely limits their structural diversity and flexibility. In this context, we have developed a series of pillarene-inspired macrocycles (PIMs) using a versatile and modular synthetic strategy during the past few years, aiming to break through the synthetic limitations in traditional pillarenes and find new opportunities and challenges in supramolecular chemistry and beyond. Specifically, by grafting biphenyl units into the pillarene backbones, extended pillar[]arenes with rigid and nanometer-sized cavities could be obtained with reasonable synthetic yields by selectively removing hydroxy/alkoxy substitutes on pillarene backbones, leaning pillar[6]arenes and leggero pillar[]arenes with enhanced structural flexibility and cavity adaptability were obtained. By combining the two types of bridging modes in pillarenes and calixarenes, a smart macrocyclic receptor with two different but interconvertible conformational features, namely geminiarene, was discovered. Benefiting from the synthetic accessibility, facile functionalization, and superior host-guest properties in solution or the solid state, this new family of macrocycles has exhibited a broad range of applications, including but not limited to supramolecular assembly/gelation/polymers, pollutant detection and separation, porous organic polymers, crystalline/amorphous molecular materials, hybrid materials, and controlled drug delivery. Thus, in this Account, we summarize our research efforts on these PIMs. We first present an overview of their design and modular synthesis and a summary of their derivatization strategies. Thereafter, particular attention is paid to their structural features, supramolecular functions, and application exploration. Finally, the remaining challenges and perspectives are outlined for their future development. We hope that this Account and our works can stimulate further advances in synthetic macrocyclic chemistry and supramolecular functional systems, leading to practical applications in various research areas.

摘要

由于其分子识别和络合的固有功能特性,自成立以来,化学家们一直在研究它们。现代超分子化学的快速发展也得益于创造具有独特几何形状和性质的新型大环。例如,在已建立的大环主体(例如冠醚、环糊精、瓜环和杯芳烃)中,pillar[]arenes(pillararenes)作为相对较新的一代星型大环主体,在过去十年中在全球范围内掀起了一个引人注目的研究热点。尽管已经对 pillararenes 的合成、主体-客体性质和各种超分子功能进行了深入研究,但许多客观的限制和挑战仍然不容忽视。例如,由于结构折叠,高级 pillar[]arenes(>7)通常不具有可用的大尺寸空腔,并且由于非竞争性的环化过程,无法大规模合成。此外,两个官能团必须通过共价键连接到每个重复的亚苯基单元,这严重限制了它们的结构多样性和灵活性。在这种情况下,我们在过去几年中使用一种通用且模块化的合成策略开发了一系列 pillarene 启发的大环(PIMs),旨在突破传统 pillararenes 中的合成限制,并在超分子化学及其他领域寻找新的机会和挑战。具体来说,通过将联苯单元引入 pillarene 骨架中,通过选择性去除 pillarene 骨架上的羟基/烷氧基取代基,可以以合理的收率获得刚性和纳米尺寸空腔的扩展 pillar[]arenes,得到了具有增强结构灵活性和空腔适应性的 lean pillar[6]arenes 和 leggero pillar[]arenes。通过结合 pillararenes 和 calixarenes 中的两种桥接模式,发现了一种具有两种不同但可相互转换构象特征的智能大环受体,即 geminiarene。得益于其在溶液或固态中的合成可及性、易于功能化以及优越的主体-客体性质,这个新的大环家族已经在超分子组装/凝胶化/聚合物、污染物检测和分离、多孔有机聚合物、结晶/无定形分子材料、杂化材料和药物控制释放等方面得到了广泛的应用。因此,在本账户中,我们总结了我们在这些 PIMs 上的研究工作。我们首先介绍了它们的设计和模块化合成概述以及衍生化策略总结。此后,特别关注它们的结构特征、超分子功能和应用探索。最后,概述了它们未来发展的剩余挑战和展望。我们希望本账户和我们的工作能够激发合成大环化学和超分子功能系统的进一步发展,为各个研究领域的实际应用提供帮助。

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