Sun Weiwei, Liu Chang, Li Yujie, Luo Shiqiang, Liu Shuangke, Hong Xiaobin, Xie Kai, Liu Yumin, Tan Xiaojian, Zheng Chunman
College of Aerospace Science and Engineering , National University of Defense Technology , Changsha 410073 , China.
Institute for Interdisciplinary Research (IIR), Key Laboratory of Optoelectronic Chemical Materials and Devices, Ministry of Education , Jianghan University , Wuhan 430056 , China.
ACS Nano. 2019 Oct 22;13(10):12137-12147. doi: 10.1021/acsnano.9b06629. Epub 2019 Oct 10.
Rationally constructing inexpensive sulfur hosts that have high electronic conductivity, large void space for sulfur, strong chemisorption, and rapid redox kinetics to polysulfides is critically important for their practical use in lithium-sulfur (Li-S) batteries. Herein, we have designed a multifunctional sulfur host based on yolk-shelled FeN@C nanoboxes (FeN@C NBs) through a strategy of etching combined with nitridation for high-rate and ultralong Li-S batteries. The highly conductive carbon shell physically confines the active material and provides efficient pathways for fast electron/ion transport. Meanwhile, the polar FeN core provides strong chemical bonding and effective catalytic activity for polysulfides, which is proved by density functional theory calculations and electrochemical analysis techniques. Benefiting from these merits, the S/FeN@C NBs electrode with a high sulfur content manifests a high specific capacity, superior rate capability, and long-term cycling stability. Specifically, even after 600 cycles at 1 C, a capacity of 881 mAh g with an average fading rate of only 0.036% can be retained, which is among the best cycling performances reported. The strategy in this study provides an approach to the design and construction of yolk-shelled iron-based compounds@carbon nanoarchitectures as inexpensive and efficient sulfur hosts for realizing practically usable Li-S batteries.
合理构建具有高电子导电性、大硫容纳空间、对多硫化物有强化学吸附作用以及快速氧化还原动力学的廉价硫宿主,对于锂硫(Li-S)电池的实际应用至关重要。在此,我们通过蚀刻与氮化相结合的策略,设计了一种基于蛋黄壳结构的FeN@C纳米盒(FeN@C NBs)的多功能硫宿主,用于高倍率和超长寿命的Li-S电池。高导电碳壳从物理上限制了活性材料,并为快速电子/离子传输提供了有效途径。同时,极性FeN核为多硫化物提供了强化学键合和有效的催化活性,这通过密度泛函理论计算和电化学分析技术得到了证实。受益于这些优点,具有高硫含量的S/FeN@C NBs电极表现出高比容量、优异的倍率性能和长期循环稳定性。具体而言,即使在1 C下循环600次后,仍可保持881 mAh g的容量,平均衰减率仅为0.036%,这是已报道的最佳循环性能之一。本研究中的策略为设计和构建蛋黄壳结构的铁基化合物@碳纳米结构提供了一种方法,作为实现实用Li-S电池的廉价且高效的硫宿主。