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首页> 外文期刊>Nanoscale >A flame-retardant polyimide interlayer with polysulfide lithium traps and fast redox conversion towards safety and high sulfur utilization Li–S batteries
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A flame-retardant polyimide interlayer with polysulfide lithium traps and fast redox conversion towards safety and high sulfur utilization Li–S batteries

机译:阻燃聚酰亚胺层间多硫化锂陷阱和快速的氧化还原对安全性和高硫转化利用Li-S电池

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摘要

In recent years and following the progress made in lithium-ion battery technology, substantial efforts have been devoted to developing practical lithium–sulfur (Li–S) batteries for next-generation commercial energy storage devices. The practical application of Li–S batteries is still limited by dramatically reduced capacities, cycling instabilities, and safety issues arising from flammable components. In this study, we designed and fabricated a flame-retardant, multifunctional interlayer which integrated electroconductive networks, lithium polysulfide (LiPS) traps and catalysts to significantly elevate the electrochemical performance and safety of pristine Li–S batteries. The LiPS adsorptive polymer polyimide (PI) constrains polysulfides to the cathode region and effectively suppresses the shuttle effect. Coralloid PI/multiwalled carbon nanotube (MCNT) compounds provide plentiful reaction sites for active materials. The catalytic Ni on the metal skeleton surface notably promotes Li+ diffusion, lowers the redox overpotential and accelerates LiPS conversion, which improves the redox kinetics associated with sulfur-related species and significantly elevates sulfur utilization. At different current densities of 0.2 C and 0.5 C, impressive initial discharge capacities of 1275.3 mA h g−1 and 1190.9 mA h g−1 are attainable respectively, with high capacity retentions of 80.3% and 78.6% over 600 cycles. Besides, the multifunctional interlayer can also act as a flame-retardant layer to promote the safety of Li–S batteries by inhibiting the spread of fire. This study provides a feasible and prospective strategy that adopts a multifunctional interlayer to develop Li–S batteries with higher capacities, longer cycling lives and safer working conditions.
机译:近年来取得的进展锂离子电池技术,充实努力致力于发展实际新一代商业能源储存设备。电池仍然受到极大的限制能力降低,循环不稳定,安全问题引起的易燃组件。在这项研究中,我们设计和制造阻燃、多功能夹层集成的导电网络,锂多硫化合物(嘴唇)陷阱和催化剂显著提高电化学性能和安全的原始Li-S电池。阴极(PI)约束多硫化合物地区,有效抑制了航天飞机的效果。网站(MCNT)化合物提供充足的反应对于活跃的材料。金属骨架表面明显促进李+扩散,降低了氧化还原过电压和加速嘴唇转换,提高了氧化还原动力学与sulfur-related有关物种和显著提高硫的利用率。0.2度和0.5 C,令人印象深刻的初始排放马能力1275.3 h g−1和1190.9 mA h g−1分别实现,高容量保留80.3%和78.6%的超过600个周期。此外,多功能层间也可以作为促进阻燃层安全Li-S电池通过抑制细菌传播的火。未来的战略,采用多功能夹层Li-S发展电池更高的能力,不再骑自行车生活和安全工作条件。

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