Hu Qianqian, Lu Jiqun, Yang Chun, Zhang Congcong, Hu Jinlong, Chang Shiyong, Dong Haiyong, Wu Chunyu, Hong Ye, Zhang Lingzhi
Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, Guangdong, 510640, China.
CAS Key Laboratory of Renewable Energy, Guangzhou, Guangdong, 510640, China.
Small. 2020 Aug;16(34):e2002046. doi: 10.1002/smll.202002046. Epub 2020 Jul 22.
Main obstacles from the shuttle effect and slow conversion rate of soluble polysulfide compromise the sulfur utilization and cycling life for lithium sulfur (Li-S) batteries. In pursuit of a practically viable high performance Li-S battery, a separator configuration (CoS /HPGC/interlayer) as efficient polysulfide trapping barrier is reported. This configuration endows great advantages, particularly enhanced conductivity, promoted polysulfide trapping capability, accelerated sulfur electrochemistry, when using the functional interlayer for Li-S cells. Attributed to the above merits, such cell shows excellent cyclability, with a capacity of 846 mAh g after 250 cycles corresponding to a high capacity retention of 80.2% at 0.2 C, and 519 mAh g after 500 cycles at 1C (1C = 1675 mA g ). In addition, the optimized separator exhibits a high initial areal capacity of 4.293 mAh cm at 0.1C. Moreover, with CoS /HPGC/interlayer, the sulfur cell enables a low self-discharge rate with a very high capacity retention of 97.1%. This work presents a structural engineering of the separator toward suppressing the dissolution of soluble Li Sn moieties and simultaneously promoting the sulfur conversion kinetics, thus achieving durable and high capacity Li-S batteries.
穿梭效应和可溶性多硫化物转化率低所带来的主要障碍,影响了锂硫(Li-S)电池的硫利用率和循环寿命。为了追求实际可行的高性能Li-S电池,本文报道了一种作为高效多硫化物捕获屏障的隔膜结构(CoS /HPGC/中间层)。当将功能性中间层用于Li-S电池时,这种结构具有诸多优势,特别是增强的导电性、提升的多硫化物捕获能力以及加速的硫电化学性能。由于上述优点,这种电池表现出优异的循环稳定性,在250次循环后容量为846 mAh g ,在0.2 C时的高容量保持率为80.2%,在1C(1C = 1675 mA g )下500次循环后容量为519 mAh g 。此外,优化后的隔膜在0.1C时具有4.293 mAh cm 的高初始面积容量。而且,采用CoS /HPGC/中间层时,硫电池的自放电率低,容量保持率高达97.1%。这项工作提出了一种隔膜的结构工程,旨在抑制可溶性Li Sn部分的溶解,同时促进硫转化动力学,从而实现耐用且高容量的Li-S电池。