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首页> 外文期刊>Journal of the American Chemical Society >Construction of Interlayer Conjugated Links in 2D Covalent Organic Frameworks via Topological Polymerization
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Construction of Interlayer Conjugated Links in 2D Covalent Organic Frameworks via Topological Polymerization

机译:通过拓扑聚合构建2D共价有机骨架中的层间缀合链路

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摘要

Two-dimensional covalent organic frameworks (2D COFs) are well-defined polymeric sheets that usually stack in an eclipsed mode via van der Waals forces. Extensive efforts have been made to manipulate interlayer interactions, yet there still lack a way to construct conjugated connections between adjacent layers, which is important for (opto)electronic-related applications. Herein, we report an interlayer topological polymerization strategy to transform the well-organized diacetylene columnar arrays in three different 2D COFs (TAPFY-COF, TAPB-COF, and TAPP-COF) into conjugated enyne chains upon heating in the solid state. The resultant COFs (COF-P) with retained high crystallinity possess broadened absorption bands and narrowed band gaps. The newly formed conjugated chains provide extra charge carrier pathways through direct π-electron delocalization. As a proof-of-concept, after topological polymerization, the conductivity of the TAPFY-COF film achieves 2.8 × 10~(-4) S/cm without doping, and the photothermal, photoacoustic, and oxygen reduction catalytic performance of TAPP-COF is significantly improved.
机译:二维共价有机框架(2D COF)是明确定义的聚合物片材,其通常通过van der WaAs力堆叠在墨外模式中。已经进行了广泛的努力来操纵层间相互作用,但仍然缺乏建造相邻层之间的共轭连接的方法,这对于(Opto)电子相关应用是重要的。在此,我们报告了层间拓扑聚合策略,将三种不同的2D COF(TapFy-COF,TapB-COF和TAPP-COF)转化为在固态的加热时将三种不同的2D COF(TapB-COF和TAPP-COF)转化为共轭的enyne链。所得COF(COF-P)具有保留的高结晶度具有较宽的吸收带和窄带间隙。新形成的共轭链通过直接π-电子临床化提供额外的电荷载体途径。作为概念验证,在拓扑聚合之后,TapFy-COF膜的电导率达到2.8×10〜(-4)S / cm而无需掺杂,以及TAPP-COF的光热,光声和氧还原催化性能明显改善。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2021年第21期|7897-7902|共6页
  • 作者单位

    Frontiers Science Center for High Energy Material Advanced Technology Research Institute (Jinan) Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 P. R. China;

    Frontiers Science Center for High Energy Material Advanced Technology Research Institute (Jinan) Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 P. R. China;

    Frontiers Science Center for High Energy Material Advanced Technology Research Institute (Jinan) Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 P. R. China;

    Frontiers Science Center for High Energy Material Advanced Technology Research Institute (Jinan) Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 P. R. China;

    Frontiers Science Center for High Energy Material Advanced Technology Research Institute (Jinan) Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 P. R. China;

    Frontiers Science Center for High Energy Material Advanced Technology Research Institute (Jinan) Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 P. R. China;

    Frontiers Science Center for High Energy Material Advanced Technology Research Institute (Jinan) Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 P. R. China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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