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用于高性能锂硫电池的二维导电金属有机框架中静电势诱导的钴-氮活性中心

Electrostatic Potential-Induced Co-N Active Centers in a 2D Conductive Metal-Organic Framework for High-Performance Lithium-Sulfur Batteries.

作者信息

Gu Shaonan, Xu Shuzheng, Song Xiaoyi, Li Hongda, Wang Yinan, Zhou Guowei, Wang Nianxing, Chang Haixin

机构信息

Key Laboratory of Fine Chemicals in Universities of Shandong, Jinan Engineering Laboratory for Multi-Scale Functional Materials, School of Chemistry and Chemical Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan250353, P. R. China.

Liuzhou Key Laboratory for New Energy Vehicle Power Lithium Battery, School of Microelectronics and Materials Engineering, Guangxi University of Science and Technology, Liuzhou545006, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 Nov 16;14(45):50815-50826. doi: 10.1021/acsami.2c13543. Epub 2022 Oct 30.

Abstract

The use of single-atom catalysts is a promising approach to solve the issues of polysulfide shuttle and sluggish conversion chemistry in lithium-sulfur (Li-S) batteries. However, a single-atom catalyst usually contains a low content of active centers because more metal ions lead to generation of aggregation or the formation of nonatomic catalysts. Herein, a 2D conductive metal-organic framework [Co(HITP)] with abundant and periodic Co-N centers was decorated on carbon fiber paper as a functional interlayer for advanced Li-S batteries. The Co(HITP)-decorated interlayer exhibits a chemical anchoring effect and facilitates conversion kinetics, thus effectively restraining the polysulfide shuttle effect. Density functional theory calculations demonstrate that the Co-N centers in Co(HITP) feature more intense electron density and more negative electrostatic potential distribution than those in the carbon matrix as the single-atom catalyst, thereby promoting the electrochemical performance due to the lower reaction Gibbs free energies and decomposition energy barriers. As a result, the optimized batteries deliver a high rate capacity of over 400 mA h g at 4 C current and a satisfying capacity decay rate of 0.028% per cycle over 1000 cycles at 1 C. The designed Co(HITP)-decorated interlayer was used to prepare one of the most advanced Li-S batteries with excellent performance (reversible capacity of 762 mA h g and 79.6% capacity retention over 500 cycles) under high-temperature conditions, implying its great potential for practical applications.

摘要

使用单原子催化剂是解决锂硫(Li-S)电池中多硫化物穿梭和缓慢转化化学问题的一种有前景的方法。然而,单原子催化剂通常含有低含量的活性中心,因为更多的金属离子会导致聚集的产生或非原子催化剂的形成。在此,一种具有丰富且周期性Co-N中心的二维导电金属有机框架[Co(HITP)]被修饰在碳纤维纸上,作为先进Li-S电池的功能中间层。Co(HITP)修饰的中间层表现出化学锚定效应并促进转化动力学,从而有效地抑制多硫化物穿梭效应。密度泛函理论计算表明,作为单原子催化剂,Co(HITP)中的Co-N中心比碳基体中的具有更强的电子密度和更负的静电势分布,从而由于更低的反应吉布斯自由能和分解能垒而促进了电化学性能。结果,优化后的电池在4 C电流下具有超过400 mA h g的高倍率容量,并且在1 C下1000次循环中具有令人满意的每循环0.028%的容量衰减率。所设计的Co(HITP)修饰的中间层被用于制备在高温条件下性能优异(可逆容量为762 mA h g且在500次循环中容量保持率为79.6%)的最先进的Li-S电池之一,这意味着其在实际应用中具有巨大潜力。

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