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多孔二硫连接共价有机框架作为锂硫电池阴极中共价键合多硫化物锚定的动态平台

Porous Dithiine-Linked Covalent Organic Framework as a Dynamic Platform for Covalent Polysulfide Anchoring in Lithium-Sulfur Battery Cathodes.

作者信息

Haldar Sattwick, Wang Mingchao, Bhauriyal Preeti, Hazra Arpan, Khan Arafat H, Bon Volodymyr, Isaacs Mark A, De Ankita, Shupletsov Leonid, Boenke Tom, Grothe Julia, Heine Thomas, Brunner Eike, Feng Xinliang, Dong Renhao, Schneemann Andreas, Kaskel Stefan

机构信息

Chair of Inorganic Chemistry I, Technische Universität Dresden, Dresden 01069, Germany.

Center for Advancing Electronics Dresden (cfaed) and Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, Dresden 01069, Germany.

出版信息

J Am Chem Soc. 2022 May 25;144(20):9101-9112. doi: 10.1021/jacs.2c02346. Epub 2022 May 11.

Abstract

Dithiine linkage formation via a dynamic and self-correcting nucleophilic aromatic substitution reaction enables the de novo synthesis of a porous thianthrene-based two-dimensional covalent organic framework (COF). For the first time, this organo-sulfur moiety is integrated as a structural building block into a crystalline layered COF. The structure of the new material deviates from the typical planar interlayer π-stacking of the COF to form undulated layers caused by bending along the C-S-C bridge, without loss of aromaticity and crystallinity of the overall COF structure. Comprehensive experimental and theoretical investigations of the COF and a model compound, featuring the thianthrene moiety, suggest partial delocalization of sulfur lone pair electrons over the aromatic backbone of the COF decreasing the band gap and promoting redox activity. Postsynthetic sulfurization allows for direct covalent attachment of polysulfides to the carbon backbone of the framework to afford a molecular-designed cathode material for lithium-sulfur (Li-S) batteries with a minimized polysulfide shuttle. The fabricated coin cell delivers nearly 77% of the initial capacity even after 500 charge-discharge cycles at 500 mA/g current density. This novel sulfur linkage in COF chemistry is an ideal structural motif for designing model materials for studying advanced electrode materials for Li-S batteries on a molecular level.

摘要

通过动态且自我校正的亲核芳香取代反应形成二硫键,能够从头合成一种基于噻蒽的多孔二维共价有机框架(COF)。首次将这种有机硫部分作为结构单元整合到结晶层状COF中。新材料的结构偏离了COF典型的平面层间π堆积,沿C-S-C桥弯曲形成起伏的层,而不会损失整个COF结构的芳香性和结晶性。对具有噻蒽部分的COF和模型化合物进行的全面实验和理论研究表明,硫孤对电子在COF的芳香主链上部分离域,降低了带隙并促进了氧化还原活性。后合成硫化允许多硫化物直接共价连接到框架的碳骨架上,从而提供一种分子设计的锂硫(Li-S)电池阴极材料,具有最小化的多硫化物穿梭效应。即使在500 mA/g电流密度下进行500次充放电循环后,制备的扣式电池仍能提供近77%的初始容量。COF化学中的这种新型硫键是一种理想的结构基序,用于在分子水平上设计研究Li-S电池先进电极材料的模型材料。

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