Yu Baozhi, Fan Ye, Mateti Srikanth, Kim Donggun, Zhao Chen, Lu Shengguo, Liu Xin, Rong Qiangzhou, Tao Tao, Tanwar Khagesh Kumar, Tan Xin, Smith Sean C, Chen Ying Ian
Institute for Frontier Materials, Deakin University, 75 Pigdons Road, Waurn Ponds, VIC 3216, Australia.
School of Materials and Energy, Guangdong University of Technology, Guangzhou 510006, China.
ACS Nano. 2021 Jan 26;15(1):1358-1369. doi: 10.1021/acsnano.0c08627. Epub 2020 Dec 28.
Flexible and high-performance batteries are urgently required for powering flexible/wearable electronics. Lithium-sulfur batteries with a very high energy density are a promising candidate for high-energy-density flexible power source. Here, we report flexible lithium-sulfur full cells consisting of ultrastable lithium cloth anodes, polysulfone-functionalized separators, and free-standing sulfur/graphene/boron nitride nanosheet cathodes. The carbon cloth decorated with lithiophilic three-dimensional MnO nanosheets not only provides the lithium anodes with an excellent flexibility but also limits the growth of the lithium dendrites during cycling, as revealed by theoretical calculations. Commercial separators are functionalized with polysulfone (PSU) a phase inversion strategy, resulting in an improved thermal stability and smaller pore size. Due to the synergistic effect of the PSU-functionalized separators and boron nitride-graphene interlayers, the shuttle of the polysulfides is significantly inhibited. Because of successful control of the shuttle effect and dendrite formation, the flexible lithium-sulfur full cells exhibit excellent mechanical flexibility and outstanding electrochemical performance, which shows a superlong lifetime of 800 cycles in the folded state and a high areal capacity of 5.13 mAh cm. We envision that the flexible strategy presented herein holds promise as a versatile and scalable platform for large-scale development of high-performance flexible batteries.
为柔性/可穿戴电子产品供电迫切需要柔性且高性能的电池。具有极高能量密度的锂硫电池是高能量密度柔性电源的一个有前景的候选者。在此,我们报道了由超稳定锂布阳极、聚砜功能化隔膜和独立式硫/石墨烯/氮化硼纳米片阴极组成的柔性锂硫全电池。装饰有亲锂三维MnO纳米片的碳布不仅赋予锂阳极优异的柔韧性,还如理论计算所揭示的那样,在循环过程中限制锂枝晶的生长。通过相转化策略用聚砜(PSU)对商用隔膜进行功能化,提高了热稳定性并减小了孔径。由于PSU功能化隔膜和氮化硼 - 石墨烯中间层的协同作用,多硫化物的穿梭效应得到显著抑制。由于成功控制了穿梭效应和枝晶形成,柔性锂硫全电池展现出优异的机械柔韧性和出色的电化学性能,在折叠状态下具有800次循环的超长寿命以及5.13 mAh cm的高面积容量。我们设想本文提出的柔性策略有望成为高性能柔性电池大规模开发的通用且可扩展平台。