Luo Rongjie, Yu Qiuhong, Lu Yang, Zhang Mengjie, Peng Tao, Yan Hailong, Liu Xianming, Kim Jang-Kyo, Luo Yongsong
School of Physics and Electronic Engineering, Xinyang Normal University, Xinyang 464000, P. R. China.
Nanoscale Horiz. 2019 Mar 1;4(2):531-539. doi: 10.1039/c8nh00343b. Epub 2018 Dec 19.
The low loading and poor cycling performance of sulfur cathodes are among the critical barriers restricting the practical application of lithium-sulfur (Li-S) batteries. The rational design of composites consisting of transition metals and conductive nanocarbon is considered an effective strategy to construct cathode materials for Li-S batteries with excellent cycling stability and rate capability. Herein, we propose a spray drying method to fabricate 3D pomegranate-like titanium nitride (TiN)@graphene composites as hosts for sulfur cathodes. The hollow spheres are coated with graphene layers to form a shell, serving as a highly efficient electrochemical reaction chamber and a reservoir for polysulfides. The TiN@graphene/S electrode exhibits an excellent capacity of 810 mA h g after 200 cycles at 0.5C. The cathodes with high areal sulfur loadings of 2.8 and 3.6 mg cm maintained remarkable capacities of 568 and 515 mA h g, respectively, after 500 cycles. The TiN hollow spheres not only accommodate the large volume expansion of sulfur but also improve the conversion of polysulfides during the discharge/charge process. The excellent electrical conductivity of the few-layered graphene shell facilitates electron transport and maintains structural stability. This work offers a strategy to combine inorganic compounds and nanocarbon as sulfur hosts to improve the electrochemical properties of Li-S batteries.
硫正极的低负载量和较差的循环性能是限制锂硫(Li-S)电池实际应用的关键障碍。由过渡金属和导电纳米碳组成的复合材料的合理设计被认为是构建具有优异循环稳定性和倍率性能的Li-S电池正极材料的有效策略。在此,我们提出一种喷雾干燥方法来制备三维石榴状氮化钛(TiN)@石墨烯复合材料作为硫正极的主体材料。空心球表面包覆有石墨烯层形成壳层,作为高效的电化学反应室和多硫化物的储存库。TiN@石墨烯/S电极在0.5C下循环200次后表现出810 mA h g的优异容量。面硫负载量分别为2.8和3.6 mg cm的正极在500次循环后分别保持了568和515 mA h g的显著容量。TiN空心球不仅能容纳硫的大体积膨胀,还能改善充放电过程中多硫化物的转化。几层石墨烯壳层优异的导电性促进了电子传输并维持了结构稳定性。这项工作提供了一种将无机化合物和纳米碳结合作为硫主体材料来改善Li-S电池电化学性能的策略。