Chen Shu-Yu, Chung Sheng-Heng
Department of Materials Science and Engineering, National Cheng Kung University, No. 1, University Road, Tainan City 701, Taiwan.
Hierarchical Green-Energy Materials Research Center, National Cheng Kung University, No. 1, University Road, Tainan City 701, Taiwan.
Nanomaterials (Basel). 2021 Aug 17;11(8):2083. doi: 10.3390/nano11082083.
An inexpensive sulfur cathode with the highest possible charge storage capacity is attractive for the design of lithium-ion batteries with a high energy density and low cost. To promote existing lithium-sulfur battery technologies in the current energy storage market, it is critical to increase the electrochemical stability of the conversion-type sulfur cathode. Here, we present the adoption of a carbon nanofoam as an advanced current collector for the lithium-sulfur battery cathode. The carbon nanofoam has a conductive and tortuous network, which improves the conductivity of the sulfur cathode and reduces the loss of active material. The carbon nanofoam cathode thus enables the development of a high-loading sulfur cathode (4.8 mg cm) with a high discharge capacity that approaches 500 mA·h g at the C/10 rate and an excellent cycle stability that achieves 90% capacity retention over 100 cycles. After adopting such an optimal cathode configuration, we superficially coat the carbon nanofoam with graphene and molybdenum disulfide (MoS) to amplify the fast charge transfer and strong polysulfide-trapping capabilities, respectively. The highest charge storage capacity realized by the graphene-coated carbon nanofoam is 672 mA·h g at the C/10 rate. The MoS-coated carbon nanofoam features high electrochemical utilization attaining the high discharge capacity of 633 mA·h g at the C/10 rate and stable cyclability featuring a capacity retention approaching 90%.
一种具有尽可能高电荷存储容量的廉价硫阴极,对于设计高能量密度和低成本的锂离子电池具有吸引力。为了在当前储能市场中推广现有的锂硫电池技术,提高转换型硫阴极的电化学稳定性至关重要。在此,我们展示了采用碳纳米泡沫作为锂硫电池阴极的先进集流体。碳纳米泡沫具有导电且曲折的网络,这提高了硫阴极的导电性并减少了活性材料的损失。因此,碳纳米泡沫阴极能够开发出高负载硫阴极(4.8 mg/cm²),在C/10倍率下具有接近500 mA·h/g的高放电容量以及在100次循环中实现90%容量保持率的优异循环稳定性。采用这种最佳阴极配置后,我们在碳纳米泡沫表面分别包覆石墨烯和二硫化钼(MoS₂),以增强快速电荷转移和强多硫化物捕获能力。石墨烯包覆的碳纳米泡沫在C/10倍率下实现的最高电荷存储容量为672 mA·h/g。二硫化钼包覆的碳纳米泡沫具有高电化学利用率,在C/10倍率下达到633 mA·h/g的高放电容量以及容量保持率接近90%的稳定循环性能。