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用于锂硫电池的共轭三维高连接共价有机框架

Conjugated Three-Dimensional High-Connected Covalent Organic Frameworks for Lithium-Sulfur Batteries.

作者信息

Liu Wenbo, Gong Lei, Liu Zhixin, Jin Yucheng, Pan Houhe, Yang Xiya, Yu Baoqiu, Li Ning, Qi Dongdong, Wang Kang, Wang Hailong, Jiang Jianzhuang

机构信息

Beijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials, Department of Chemistry and Chemical Engineering, School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing 100083, China.

出版信息

J Am Chem Soc. 2022 Sep 21;144(37):17209-17218. doi: 10.1021/jacs.2c07596. Epub 2022 Sep 9.

Abstract

Developing conjugated three-dimensional (3D) covalent organic frameworks (COFs) still remains an extremely difficult task due to the lack of enough conjugated 3D building blocks. Herein, condensation between an 8-connected pentiptycene-based building block (DMOPTP) and 4-connected square-planar linkers affords two 3D COFs (named 3D-scu-COF-1 and 3D-scu-COF-2). A combination of the 3D homoaromatic conjugated structure of the former building block with the 2D conjugated structure of the latter linking units enables the π-electron delocalization over the whole frameworks of both COFs, endowing them with excellent conductivities of 3.2-3.5 × 10 S cm. In particular, the 3D rigid quadrangular prism shape of DMOPTP guides the formation of a twofold interpenetrated 3D topology and high-connected permanent porosity with a large Brunauer-Emmett-Teller (BET) surface area of 2340 and 1602 m g for 3D-scu-COF-1 and 3D-scu-COF-2, respectively, ensuring effective small molecule storage and mass transport characteristics. This, in combination with their good charge transport properties, renders them promising sulfur host materials for lithium-sulfur batteries (LSBs) with high capacities (1035-1155 mA h g at 0.2 C, 1 C = 1675 mA g), excellent rate capabilities (713-757 mA h g at 5.0 C), and superior cycling stability (71-83% capacity retention at 2.0 C after 500 cycles), surpassing the most of organic LSB cathodes reported thus far.

摘要

由于缺乏足够的共轭三维构建块,开发共轭三维(3D)共价有机框架(COF)仍然是一项极其困难的任务。在此,基于八连接并五苯的构建块(DMOPTP)与四连接平面正方形连接体之间的缩合反应得到了两种三维COF(命名为3D - scu - COF - 1和3D - scu - COF - 2)。前一种构建块的三维同芳香共轭结构与后一种连接单元的二维共轭结构相结合,使得π电子能够在两种COF的整个框架上离域,赋予它们3.2 - 3.5×10 S cm的优异电导率。特别是,DMOPTP的三维刚性四棱柱形状引导形成了一种双重互穿的三维拓扑结构以及具有高连接性的永久孔隙率,3D - scu - COF - 1和3D - scu - COF - 2的布鲁诺尔 - 埃米特 - 特勒(BET)表面积分别为2340和1602 m²/g,确保了有效的小分子存储和质量传输特性。这与它们良好的电荷传输性能相结合,使其成为用于锂硫电池(LSB)的有前景的硫主体材料,具有高容量(在0.2 C时为1035 - 1155 mA h/g,1 C = 1675 mA/g)、优异的倍率性能(在5.0 C时为713 - 757 mA h/g)以及卓越的循环稳定性(在2.0 C下500次循环后容量保持率为71 - 83%),超过了迄今为止报道的大多数有机LSB正极。

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