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首页> 外文期刊>Nanotechnology >Ultrafine nanosulfur particles sandwiched in little oxygen-functionalized graphene layers as cathodes for high rate and long-life lithium-sulfur batteries
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Ultrafine nanosulfur particles sandwiched in little oxygen-functionalized graphene layers as cathodes for high rate and long-life lithium-sulfur batteries

机译:超细纳米硫颗粒夹在几乎氧官能化的石墨烯层中,为高速率和长寿命锂 - 硫磺电池的阴极

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摘要

Although lithium-sulfur batteries are one of the promising candidates for next-generation energy storage systems, the practical applications are still hampered by the poor cycle life, which can be attributed to the insulating properties of sulfur and the shuttle effect of electrochemical intermediate polysulfides. To address these problems, we synthesize sandwich-like composites which consist of ultrafine nanosulfur particles enveloped by little oxygen-functionalized graphene layers (F-GS@S). In this structure, the little oxygen-functionalized graphene backbone can not only accelerate the redox kinetics of sulfur species, but also eliminate the shuttle effect of polysulfides by strong chemical interaction. Moreover, the sandwich confinement structures can further inhibit the dissolution of polysulfides by physical restraint and accommodate the volume contraction/expansion of sulfur during cycling. As a result, the F-GS@S composites used as cathodes for lithium-sulfur batteries display a superior rate capability with the high capacities of 1208 mAh g(-1) at 0.1 C and 601.7 mAh g(-1) at 2 C and high cycling stability with a capacity retention of 70.5% after 500 cycles at 2 C. In situ characterizations and real-time monitoring experiments during the charge-discharge process are carried out to elucidate the reaction mechanism of the F-GS@S composites as cathodes for high rate and long-life lithium-sulfur batteries.
机译:虽然锂 - 硫磺电池是下一代储能系统有希望的候选人之一,但实际应用仍然受到较差的循环寿命,这可能归因于硫的绝缘性能和电化学中间多硫化物的梭效果。为了解决这些问题,我们合成夹层状复合材料,该复合材料由小氧官能化石墨烯层(F-GS @ S)包围的超细纳米颗粒组成。在这种结构中,小氧官能化的石墨烯骨架不仅可以加速硫种类的氧化还原动力学,还可以通过强化学相互作用消除多硫化物的梭效果。此外,夹层限制结构可以通过物理抑制进一步抑制多硫化物的溶解,并在循环期间容纳硫的体积收缩/膨胀。结果,用作锂 - 硫电池的阴极的F-GS @ S复合材料显示出优异的速率能力,其高容量在0.1c和601.7mah g(-1)时为1208mahg(-1),在2℃下在2℃下500次循环后的容量保留的高循环稳定性,在25℃下进行70.5%。在进行电荷 - 放电过程中的原位表征和实时监测实验,以阐明F-GS @ S复合材料的反应机理用于高速率和长寿命锂硫电池的阴极。

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