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二噻吩并噻吩的应用:机械响应型荧光探针、硫属键催化及其他领域的研究进展

Dithienothiophenes at Work: Access to Mechanosensitive Fluorescent Probes, Chalcogen-Bonding Catalysis, and Beyond.

机构信息

Department of Organic Chemistry , University of Geneva , Geneva , Switzerland.

出版信息

Chem Rev. 2019 Oct 9;119(19):10977-11005. doi: 10.1021/acs.chemrev.9b00279. Epub 2019 Aug 15.

Abstract

In this review, the multifunctionality of dithieno[3,2-:2',3'-]thiophenes (DTTs) is covered comprehensively. This is of interest because all involved research is very recent and emphasizes timely topics such as mechanochemistry for bioimaging or chalcogen bonds for catalysis and solar cells and because the newly emerging privileged scaffold is embedded in an inspiring structural space. At the beginning, DTTs are introduced with regard to nomenclature, constitutional isomers, and optoelectronic properties. The structural space around DTTs is mapped out next with regard to heteroatom substitution in the bridge and core, covering much of the periodic table, eccentric heteroatom doping, and bridge expansions. After a brief summary of synthetic approaches to the DTT scaffold, chalcogen bonds are introduced as, together with redox switching and turn-on fluorescence, one of the three conceptual foundations of the most multifunctionality. Realized functions cover anion binding, transport (ion carriers, ion channels), catalysis, and the first fluorescent probes to image physical forces in living cells. The appearance of DTTs in many other photosystems covers push-pull systems for nonlinear optics and dye-sensitized solar cells, DTT polymers in light-emitting diodes, organic field-effect transistors and organic photovoltaics, DTT self-assembly and templated assembly into thin films and fluorescent fibers, also within cells, and the integration of DTTs into photochromes and biaromatics that violate the Hückel rule..

摘要

在这篇综述中,全面介绍了二噻吩并[3,2-b:2',3'-d]噻吩(DTTs)的多功能性。之所以对此感兴趣,是因为所有涉及的研究都非常新颖,强调了当前的热门话题,如用于生物成像的机械化学、用于催化和太阳能电池的硫属键,以及新兴的特权支架嵌入在一个鼓舞人心的结构空间中。首先,介绍了 DTT 有关命名、构象异构体和光电性能。接下来,围绕桥和核心中的杂原子取代,涵盖了大部分元素周期表、偏心杂原子掺杂和桥扩展,对 DTT 周围的结构空间进行了描述。在简要总结了 DTT 支架的合成方法之后,引入了硫属键,它与氧化还原开关和荧光开启一起,是多功能性的三个概念基础之一。实现的功能包括阴离子结合、传输(离子载体、离子通道)、催化以及第一个用于在活细胞中成像物理力的荧光探针。DTT 出现在许多其他光系统中,涵盖了用于非线性光学和染料敏化太阳能电池的推拉系统、发光二极管中的 DTT 聚合物、有机场效应晶体管和有机光伏、DTT 自组装和模板组装成薄膜和荧光纤维,包括在细胞内,以及 DTT 与光致变色和违反休克尔规则的双芳烃的整合。

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