Li Guoxing, Sun Jinhua, Hou Wenpeng, Jiang Shidong, Huang Yong, Geng Jianxin
Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, 29 Zhongguancun East Road, Haidian District, Beijing 100190, China.
Nat Commun. 2016 Feb 1;7:10601. doi: 10.1038/ncomms10601.
Sulfur is a promising cathode material for lithium-sulfur batteries because of its high theoretical capacity (1,675 mA h g(-1)); however, its low electrical conductivity and the instability of sulfur-based electrodes limit its practical application. Here we report a facile in situ method for preparing three-dimensional porous graphitic carbon composites containing sulfur nanoparticles (3D S@PGC). With this strategy, the sulfur content of the composites can be tuned to a high level (up to 90 wt%). Because of the high sulfur content, the nanoscale distribution of the sulfur particles, and the covalent bonding between the sulfur and the PGC, the developed 3D S@PGC cathodes exhibit excellent performance, with a high sulfur utilization, high specific capacity (1,382, 1,242 and 1,115 mA h g(-1) at 0.5, 1 and 2 C, respectively), long cycling life (small capacity decay of 0.039% per cycle over 1,000 cycles at 2 C) and excellent rate capability at a high charge/discharge current.
硫由于其高理论容量(1675 mA h g⁻¹)而成为锂硫电池中一种很有前景的阴极材料;然而,其低电导率和硫基电极的不稳定性限制了其实际应用。在此,我们报告一种简便的原位方法来制备包含硫纳米颗粒的三维多孔石墨碳复合材料(3D S@PGC)。通过这种策略,复合材料中的硫含量可调控至高水平(高达90 wt%)。由于高硫含量、硫颗粒的纳米级分布以及硫与PGC之间的共价键合,所制备的3D S@PGC阴极表现出优异的性能,具有高硫利用率、高比容量(在0.5、1和2 C时分别为1382、1242和1115 mA h g⁻¹)、长循环寿命(在2 C下1000次循环中每循环容量衰减仅0.039%)以及在高充放电电流下出色的倍率性能。