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采用纳米结构球形碳构建吡咯并[3,2-b]哒嗪基三嗪框架的三维结构:提高超级电容器材料的电化学性能。

Three-dimensional organization of pyrrolo[3,2-b]pyrrole-based triazine framework using nanostructural spherical carbon: enhancing electrochemical performance of materials for supercapacitors.

机构信息

Department of Organic Chemistry, Faculty of Pharmacy with the Division of Laboratory Medicine, Medical University of Bialystok, Mickiewicza 2A, 15-222, Bialystok, Poland.

Faculty of Chemistry, University of Bialystok, Ciolkowskiego 1K, 15-245, Bialystok, Poland.

出版信息

Sci Rep. 2023 Jul 3;13(1):10737. doi: 10.1038/s41598-023-37708-7.

Abstract

Covalent triazine-based frameworks have attracted much interest recently due to their high surface area and excellent thermal and electrochemical stabilities. This study shows that covalently immobilizing triazine-based structures on spherical carbon nanostructures results in the organization of micro- and mesopores in a three-dimensional manner. We selected the nitrile-functionalized pyrrolo[3,2-b]pyrrole unit to form triazine rings to construct a covalent organic framework. Combining spherical carbon nanostructures with the triazine framework produced a material with unique physicochemical properties, exhibiting the highest specific capacitance value of 638 F g in aqueous acidic solutions. This phenomenon is attributed to many factors. The material exhibits a large surface area, a high content of micropores, a high content of graphitic N, and N-sites with basicity and semi-crystalline character. Thanks to the high structural organization and reproducibility, and remarkably high specific capacitance, these systems are promising materials for use in electrochemistry. For the first time, hybrid systems containing triazine-based frameworks and carbon nano-onions were used as electrodes for supercapacitors.

摘要

共价三嗪基框架由于其高比表面积和优异的热稳定性和电化学稳定性而受到广泛关注。本研究表明,将三嗪基结构共价固定在球形碳纳米结构上会导致微介孔以三维方式进行组织。我们选择了腈官能化的吡咯并[3,2-b]吡咯单元形成三嗪环来构建共价有机框架。将球形碳纳米结构与三嗪框架相结合,得到了一种具有独特物理化学性质的材料,在水性酸性溶液中的比电容值高达 638 F g。这种现象归因于许多因素。该材料具有大的比表面积、高的微孔含量、高的石墨 N 含量以及具有碱性和半晶性质的 N 位。由于具有高的结构组织和重现性以及非常高的比电容,这些系统有望成为电化学领域的应用材料。首次使用含有三嗪基框架和碳纳米洋葱的混合系统作为超级电容器的电极。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6dbf/10318046/d2b299135f77/41598_2023_37708_Fig1_HTML.jpg

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