Chen Manfang, Jiang Shouxin, Huang Cheng, Wang Xianyou, Cai Siyu, Xiang Kaixiong, Zhang Yapeng, Xue Jiaxi
National Base for International Science & Technology Cooperation, School of Chemistry, Key Laboratory of Environmentally Friendly Chemistry and Applications of Ministry of Education, Hunan Province Key Laboratory for Electrochemical Energy Storage and Conversion, Xiangtan University, Hunan, Xiangtan, 411105, P. R. China.
ChemSusChem. 2017 Apr 22;10(8):1803-1812. doi: 10.1002/cssc.201700050. Epub 2017 Mar 27.
Honeycomb-like nitrogen and sulfur dual-doped hierarchical porous biomass-derived carbon/sulfur composites (NSHPC/S) are successfully fabricated for high energy density lithium-sulfur batteries. The effects of nitrogen, sulfur dual-doping on the structures and properties of the NSHPC/S composites are investigated in detail by transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS), X-ray diffraction (XRD), and charge/discharge tests. The results show that N, S dual-doping not only introduces strong chemical adsorption and provides more active sites but also significantly enhances the electronic conductivity and hydrophilic properties of hierarchical porous biomass-derived carbon, thereby significantly enhancing the utilization of sulfur and immobilizing the notorious polysulfide shuttle effect. Especially, the as-synthesized NSHPC-7/S exhibits high initial discharge capacity of 1204 mA h g at 1.0 C and large reversible capacity of 952 mA h g after 300 cycles at 0.5 C with an ultralow capacity fading rate of 0.08 % per cycle even at high sulfur content (85 wt %) and high active material areal mass loading (2.8 mg cm ) for the application of high energy density Li-S batteries.
成功制备了蜂窝状氮硫双掺杂分级多孔生物质衍生碳/硫复合材料(NSHPC/S)用于高能量密度锂硫电池。通过透射电子显微镜(TEM)、X射线光电子能谱(XPS)、X射线衍射(XRD)和充放电测试详细研究了氮、硫双掺杂对NSHPC/S复合材料结构和性能的影响。结果表明,氮、硫双掺杂不仅引入了强化学吸附并提供了更多活性位点,还显著提高了分级多孔生物质衍生碳的电子导电性和亲水性能,从而显著提高了硫的利用率并抑制了臭名昭著的多硫化物穿梭效应。特别是,所合成的NSHPC-7/S在1.0 C下表现出1204 mA h g的高初始放电容量,在0.5 C下循环300次后具有952 mA h g的大可逆容量,即使在高硫含量(85 wt%)和高活性材料面质量负载(2.8 mg cm )的情况下,每循环的超低容量衰减率为0.08%,适用于高能量密度锂硫电池。