Zhang Shouzheng, Zhong Ning, Zhou Xing, Zhang Mingjie, Huang Xiangping, Yang Xuelin, Meng Ruijin, Liang Xiao
College of Materials and Chemical Engineering, China Three Gorges University, 8 Daxue Road, Yichang, 443002, Hubei, People's Republic of China.
College of Science, China Three Gorges University, 8 Daxue Road, Yichang, 443002, Hubei, People's Republic of China.
Nanomicro Lett. 2020 May 20;12(1):112. doi: 10.1007/s40820-020-00449-7.
The lithium-sulfur battery is the subject of much recent attention due to the high theoretical energy density, but practical applications are challenged by fast decay owing to polysulfide shuttle and electrode architecture degradation. A comprehensive study of the sulfur host microstructure design and the cell architecture construction based on the MXene phase (TiCT nanosheets) is performed, aiming at realize stable cycling performance of Li-S battery with high sulfur areal loading. The interwoven KB@TiCT composite formed by self-assembly of MXene and Ktejen black, not only provides superior conductivity and maintains the electrode integrality bearing the volume expansion/shrinkage when used as the sulfur host, but also functions as an interlayer on separator to further retard the polysulfide cross-diffusion that possibly escaped from the cathode. The KB@TiCT interlayer is only 0.28 mg cm in areal loading and 3 μm in thickness, which accounts a little contribution to the thick sulfur electrode; thus, the impacts on the energy density is minimal. By coupling the robust KB@TiCT cathode and the effective KB@TiCT modified separator, a stable Li-S battery with high sulfur areal loading (5.6 mg cm) and high areal capacity (6.4 mAh cm) at relatively lean electrolyte is achieved.
锂硫电池由于其高理论能量密度而备受关注,但由于多硫化物穿梭和电极结构退化导致快速衰减,其实际应用面临挑战。基于MXene相(TiCT纳米片)进行了硫主体微观结构设计和电池结构构建的综合研究,旨在实现高硫面负载锂硫电池的稳定循环性能。由MXene和科琴黑自组装形成的交织状KB@TiCT复合材料,不仅具有优异的导电性,在用作硫主体时能承受体积膨胀/收缩并保持电极完整性,还可作为隔膜上的中间层进一步抑制可能从阴极逸出的多硫化物交叉扩散。KB@TiCT中间层的面负载仅为0.28 mg cm,厚度为3 μm,对厚硫电极的贡献很小;因此,对能量密度的影响最小。通过将坚固的KB@TiCT阴极与有效的KB@TiCT改性隔膜相结合,在相对贫电解质条件下实现了具有高硫面负载(5.6 mg cm)和高面积容量(6.4 mAh cm)的稳定锂硫电池。