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一种用于合成机械互锁纳米环的高产率活性模板点击反应(AT-CuAAC)。

A High-Yielding Active Template Click Reaction (AT-CuAAC) for the Synthesis of Mechanically Interlocked Nanohoops.

作者信息

May James H, Fehr Julia M, Lorenz Jacob C, Zakharov Lev N, Jasti Ramesh

机构信息

Department of Chemistry and Biochemistry, Materials Science Institute, and Knight Campus for Accelerating Scientific Impact, University of Oregon, Eugene, Oregon, 97403, United States.

CAMCOR-Center for Advanced Materials Characterization in Oregon, University of Oregon, Eugene, Oregon, 97403, United States.

出版信息

Angew Chem Int Ed Engl. 2024 May 13;63(20):e202401823. doi: 10.1002/anie.202401823. Epub 2024 Apr 10.

Abstract

Mechanically interlocked molecules (MIMs) represent an exciting yet underexplored area of research in the context of carbon nanoscience. Recently, work from our group and others has shown that small carbon nanotube fragments-[n]cycloparaphenylenes ([n]CPPs) and related nanohoop macrocycles-may be integrated into mechanically interlocked architectures by leveraging supramolecular interactions, covalent tethers, or metal-ion templates. Still, available synthetic methods are typically difficult and low yielding, and general methods that allow for the creation of a wide variety of these structures are limited. Here we report an efficient route to interlocked nanohoop structures via the active template Cu-catalyzed azide-alkyne cycloaddition (AT-CuAAC) reaction. With the appropriate choice of substituents, a macrocyclic precursor to 2,2'-bipyridyl embedded [9]CPP (bipy[9]CPP) participates in the AT-CuAAC reaction to provide [2]rotaxanes in near-quantitative yield, which can then be converted into the fully π-conjugated catenane structures. Through this approach, two nanohoop[2]catenanes are synthesized which consist of a bipy[9]CPP catenated with either Tz[10]CPP or Tz[12]CPP (where Tz denotes a 1,2,3-triazole moiety replacing one phenylene ring in the [n]CPP backbone).

摘要

在碳纳米科学领域,机械互锁分子(MIMs)代表了一个令人兴奋但尚未充分探索的研究领域。最近,我们小组和其他团队的研究表明,小的碳纳米管片段——[n]环对亚苯基([n]CPPs)和相关的纳米环大环——可以通过利用超分子相互作用、共价连接或金属离子模板整合到机械互锁结构中。然而,现有的合成方法通常难度大且产率低,能够创建多种此类结构的通用方法也很有限。在此,我们报道了一种通过活性模板铜催化的叠氮化物-炔烃环加成(AT-CuAAC)反应制备互锁纳米环结构的有效途径。通过适当选择取代基,嵌入2,2'-联吡啶的[9]CPP(bipy[9]CPP)的大环前体参与AT-CuAAC反应,以近乎定量的产率提供[2]轮烷,然后可以将其转化为完全π共轭的索烃结构。通过这种方法,合成了两种纳米环[2]索烃,它们由与Tz[10]CPP或Tz[12]CPP(其中Tz表示在[n]CPP主链中取代一个亚苯基环的1,2,3-三唑部分)相连的bipy[9]CPP组成。

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