Dong Lingling, Jiang Wen, Pan Kefeng, Zhang Lipeng
School of Chemistry and Chemical Engineering, Shandong University of Technology, Zibo 255049, China.
School of Materials and New Energy, South China Normal University, Shanwei 516600, China.
Nanomaterials (Basel). 2023 Dec 5;13(24):3084. doi: 10.3390/nano13243084.
Lithium-sulfur batteries (LSB) show excellent potential as future energy storage devices with high energy density, but their slow redox kinetics and the shuttle effect seriously hinder their commercial application. Herein, a 0D@2D composite was obtained by anchoring polar nano-TiO onto a 2D layered g-CN surface in situ, and a functional separator was prepared using multi-walled carbon nanotubes as a conductive substrate. Due to their long-range conductivity, multi-walled carbon nanotubes make up for the low conductivity of TiO@g-CN to some extent. A lithium-sulfur battery prepared with a modified separator exhibited excellent long-term cycle performance, a good lithium ion diffusion rate, and rapid redox kinetics. The initial specific discharge capacity of the composite was 1316 mAh g at 1 C, and a high specific discharge capacity of 569.9 mAh g was maintained after 800 cycles (the capacity decay rate per cycle was only 0.07%). Even at the high current density of 5 C, a specific capacity of 784 mAh g was achieved. After 60 cycles at 0.5 C, the modified separator retained the discharge capacity of 718 mAh g under a sulfur load of 2.58 mg cm. In summary, the construction of a heterojunction significantly improved the overall cycle stability of the battery and the utilization rate of active substances. Therefore, this study provides a simple and effective strategy for further improving the overall performance and commercial application of lithium-sulfur batteries.
锂硫电池(LSB)作为具有高能量密度的未来储能装置展现出优异的潜力,但其缓慢的氧化还原动力学和穿梭效应严重阻碍了它们的商业应用。在此,通过将极性纳米TiO原位锚定在二维层状g-CN表面获得了一种0D@2D复合材料,并以多壁碳纳米管作为导电基底制备了一种功能隔膜。由于多壁碳纳米管具有长程导电性,在一定程度上弥补了TiO@g-CN的低导电性。用改性隔膜制备的锂硫电池表现出优异的长期循环性能、良好的锂离子扩散速率和快速的氧化还原动力学。该复合材料在1 C下的初始比放电容量为1316 mAh g,在800次循环后仍保持569.9 mAh g的高比放电容量(每循环容量衰减率仅为0.07%)。即使在5 C的高电流密度下,也能实现784 mAh g的比容量。在0.5 C下循环60次后,改性隔膜在硫负载为2.58 mg cm的情况下仍保持718 mAh g的放电容量。综上所述,异质结的构建显著提高了电池的整体循环稳定性和活性物质的利用率。因此,本研究为进一步提高锂硫电池的整体性能和商业应用提供了一种简单有效的策略。