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活性金属模板合成的纳米环轮烷及其在传感应用中的潜力。

Nanohoop Rotaxanes from Active Metal Template Syntheses and Their Potential in Sensing Applications.

机构信息

Department of Chemistry & Biochemistry and Material Science Institute, University of Oregon, Eugene, OR, 97403, USA.

出版信息

Angew Chem Int Ed Engl. 2019 May 27;58(22):7341-7345. doi: 10.1002/anie.201901984. Epub 2019 Apr 17.

Abstract

The unique optoelectronic properties and smooth, rigid pores of macrocycles with radially oriented π systems render them fascinating candidates for the design of novel mechanically interlocked molecules with new properties. Two high-yielding strategies are used to prepare nanohoop [2]rotaxanes, which owing to the π-rich macrocycle are highly emissive. Then, metal coordination, an intrinsic property afforded by the resulting mechanical bond, can lead to molecular shuttling as well as modulate the observed fluorescence in both organic and aqueous conditions. Inspired by these findings, a self-immolative [2]rotaxane was then designed that self-destructs in the presence of an analyte, eliciting a strong fluorescent turn-on response, serving as proof-of-concept for a new type of molecular sensing material. More broadly, this work highlights the conceptual advantages of combining compact π-rich macrocyclic frameworks with mechanical bonds formed via active-template syntheses.

摘要

大环的独特光电性质和具有径向取向π 体系的光滑、刚性孔道,使它们成为设计具有新性质的新型机械互锁分子的迷人候选物。使用两种高产率的策略来制备纳米环[2]轮烷,由于富π 的大环,它们具有很高的发光性。然后,金属配位是由所得机械键赋予的固有性质,它可以导致分子穿梭,并在有机和水相条件下调节观察到的荧光。受这些发现的启发,然后设计了一种自耗[2]轮烷,在存在分析物的情况下会自行破坏,引发强烈的荧光开启响应,为新型分子传感材料提供了概念验证。更广泛地说,这项工作强调了将紧凑的富π 大环框架与通过活性模板合成形成的机械键相结合的概念优势。

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