多硫化物
硫化物
共价键
喹喔啉
氧化还原
硫黄
材料科学
锂硫电池
锂(药物)
无机化学
电化学
化学
电解质
有机化学
电极
物理化学
医学
内分泌学
作者
Sattwick Haldar,Preeti Bhauriyal,Anthony R. Ramuglia,Arafat Hossain Khan,Sunel De Kock,Arpan Hazra,Volodymyr Bon,Dominik L. Pastoetter,Sebastian Kirchhoff,Leonid Shupletsov,Ankita De,Mark A. Isaacs,Xinliang Feng,Michael Walter,Eike Brunner,Inez M. Weidinger,Thomas Heine,Andreas Schneemann,Stefan Kaskel
标识
DOI:10.1002/adma.202210151
摘要
The chelating ability of quinoxaline cores and the redox activity of organosulfide bridges in layered covalent organic frameworks (COFs) offer dual active sites for reversible lithium (Li)-storage. The designed COFs combining these properties feature disulfide and polysulfide-bridged networks showcasing an intriguing Li-storage mechanism, which can be considered as a lithium-organosulfide (Li-OrS) battery. The experimental-computational elucidation of three quinoxaline COFs containing systematically enhanced sulfur atoms in sulfide bridging demonstrates fast kinetics during Li interactions with the quinoxaline core. Meanwhile, bilateral covalent bonding of sulfide bridges to the quinoxaline core enables a redox-mediated reversible cleavage of the sulfursulfur bond and the formation of covalently anchored lithium-sulfide chains or clusters during Li-interactions, accompanied by a marked reduction of Li-polysulfide (Li-PS) dissolution into the electrolyte, a frequent drawback of lithium-sulfur (Li-S) batteries. The electrochemical behavior of model compounds mimicking the sulfide linkages of the COFs and operando Raman studies on the framework structure unravels the reversibility of the profound Li-ion-organosulfide interactions. Thus, integrating redox-active organic-framework materials with covalently anchored sulfides enables a stable Li-OrS battery mechanism which shows benefits over a typical Li-S battery.
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