Tang Xuxu, Lv Li-Ping, Chen Shuangqiang, Sun Weiwei, Wang Yong
School of Environmental and Chemical Engineering, Shanghai University, 99 Shangda Road, Shanghai, 200444, People's Republic of China.
School of Environmental and Chemical Engineering, Shanghai University, 99 Shangda Road, Shanghai, 200444, People's Republic of China; Key Laboratory of Organic Compound Pollution Control Engineering, Ministry of Education, Shanghai University, 99 Shangda Road, Shanghai 200444, People's Republic of China.
J Colloid Interface Sci. 2022 Sep 15;622:591-601. doi: 10.1016/j.jcis.2022.04.166. Epub 2022 Apr 30.
Covalent-organic frameworks (COFs) and related composites show an enormous potential in next-generation high energy-density lithium-ion batteries. However, the strategy to design functional covalent organic framework materials with nanoscale structure and controllable morphology faces serious challenges. In this work, a layer-assembled hollow microspherical structure (Sn@COF-hollow) based on the tin-nitrogen (Sn-N) coordination interaction is designed. Such carefully-crafted hollow structure with large exposed surface area and metal center decoration endows the Sn@COF-hollow electrode with more activated lithium-reaction sites, including Sn ions, carbon-nitrogen double bond (CN) groups and carbon-carbon double bond (CC) units from aromatic benzene rings. Besides, the layer-assembled hollow structure of the Sn@COF-hollow electrode can also alleviate the volume expansion of electrode during repeated cycling, and achieve fast electrons/ions transmission and capacitance-dominated lithium-reaction kinetics, further leading to enhanced cycling performance and rate properties. In addition, the effective combination of the inorganic metal and organic framework components in the Sn@COF-hollow electrode can promote its improved conductivity and further enhance lithium-storage properties. Benefited from these merits, the Sn@COF-hollow electrode delivers highly reversible large capacities of 1080 mAh g after 100 cycles at 100 mA g and 685 mAh g after 300 cycles at 1000 mA g. This work provides an interesting and effective way to design COF-based anodes of lithium-ion battery with improved electrochemical performances.
共价有机框架材料(COFs)及其相关复合材料在下一代高能量密度锂离子电池中展现出巨大潜力。然而,设计具有纳米级结构和可控形貌的功能性共价有机框架材料的策略面临严峻挑战。在这项工作中,基于锡 - 氮(Sn - N)配位相互作用设计了一种层状组装的中空微球结构(Sn@COF - hollow)。这种精心设计的具有大暴露表面积和金属中心修饰的中空结构赋予Sn@COF - hollow电极更多活性锂反应位点,包括来自芳香苯环的Sn离子、碳 - 氮双键(CN)基团和碳 - 碳双键(CC)单元。此外,Sn@COF - hollow电极的层状组装中空结构还可以缓解电极在反复循环过程中的体积膨胀,并实现快速的电子/离子传输以及电容主导的锂反应动力学,进而提升循环性能和倍率性能。此外,Sn@COF - hollow电极中无机金属和有机框架成分的有效结合可以促进其电导率的提高,并进一步增强储锂性能。受益于这些优点,Sn@COF - hollow电极在100 mA g下循环100次后提供1080 mAh g的高可逆大容量,在1000 mA g下循环300次后提供685 mAh g的容量。这项工作为设计具有改善电化学性能的基于COF的锂离子电池负极提供了一种有趣且有效的方法。