Sun Tingting, Huang Cheng, Shu Hongbo, Luo Lipan, Liang Qianqian, Chen Manfang, Su Jincang, Wang Xianyou
Key Laboratory of Environmentally Friendly Chemistry and Applications of Ministry of Education, National Base for International Science & Technology Cooperation, National Local Joint Engineering Laboratory for Key Materials of New Energy Storage Battery, School of Chemistry, Xiangtan University, Xiangtan, Hunan 411105, China.
College of Civil Engineering and Mechanics, Xiangtan University, Xiangtan 411105, China.
ACS Appl Mater Interfaces. 2020 Dec 30;12(52):57975-57986. doi: 10.1021/acsami.0c20519. Epub 2020 Dec 17.
Lithium-sulfur (Li-S) batteries have attracted all-time attention because of their supernormal high energy density and low cost, whereas they are still plagued by the severe polysulfide shuttling and sluggish sulfur redox reaction kinetics. Moreover, poor sulfur electrochemical utilization and rapid capacity degradation are top concerns in the high-loading Li-S batteries, which severely hinder their practical applications. Herein, a completely novel porous nanoneedle array NiCoS electrocatalyst grown on a nitrogen-sulfur-doped carbon cloth (NSCC) (NiCoS@NSCC) is constructed as a 3D self-supported sulfur host for high-loading Li-S batteries, in which the highest sulfur loading reaches 4.9 mg cm. The as-prepared NiCoS@NSCC with a typical sulfur loading of around 2.0 mg cm provides a high discharge capacity of 1223 mA h g at 0.2 C and long-term cycle stability with a low capacity decay of 0.046% per cycle over 500 cycles at 1 C. Additionally, NiCoS@NSCC/S with a high sulfur loading of 4.9 mg cm delivers an excellent reversible areal capacity of 4.4 mA h cm g over 50 cycles. Noting that such superior electrochemical performance of NiCoS@NSCC/S with high-loading sulfur is mainly attributed to high electronic conductivity and the abundant porous structure of NSCC to transport electrons and ions fastly and accommodate sulfur as well as robust absorbability and the outstanding catalytic effect of NiCoS to accelerate the capture and conversion of the polysulfide intermediate. Predictably, this work can provide a guideline to efficiently and rationally design the structure of metal-based compounds with catalytic functions for various applications.
锂硫(Li-S)电池因其超常的高能量密度和低成本而备受关注,然而,它们仍受严重的多硫化物穿梭效应和缓慢的硫氧化还原反应动力学的困扰。此外,在高负载锂硫电池中,硫的电化学利用率低和容量快速衰减是首要问题,这严重阻碍了它们的实际应用。在此,一种完全新颖的生长在氮硫掺杂碳布(NSCC)上的多孔纳米针阵列NiCoS电催化剂(NiCoS@NSCC)被构建为用于高负载锂硫电池的三维自支撑硫宿主,其中最高硫负载量达到4.9 mg cm 。所制备的典型硫负载量约为2.0 mg cm 的NiCoS@NSCC在0.2 C下提供1223 mA h g 的高放电容量,并具有长期循环稳定性,在1 C下500次循环中每循环容量衰减低至0.046%。此外,硫负载量为4.9 mg cm 的NiCoS@NSCC/S在50次循环中提供了4.4 mA h cm g 的优异可逆面积容量。值得注意的是,这种具有高负载硫的NiCoS@NSCC/S的优异电化学性能主要归因于NSCC的高电子导电性和丰富的多孔结构,以快速传输电子和离子并容纳硫,以及NiCoS的强大吸附能力和出色的催化作用,以加速多硫化物中间体的捕获和转化。可以预见,这项工作可为高效合理地设计具有催化功能的金属基化合物结构以用于各种应用提供指导。