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Interconnected carbon nanotube/graphene nanosphere scaffolds as free-standing paper electrode for high-rate and ultra-stable lithium-sulfur batteries

机译:互连的碳纳米管/石墨烯纳米球支架作为独立式纸电极,用于高速率和超稳定锂硫电池

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The rational design and fabrication of flexible electrodes with high capacity, high rate capability, and high cycling stability is of urgent need for bendable, wearable, and implantable electronic devices. The integration of conductive nanocarbon as flexible scaffolds is an efficient and effective route toward flexible high-energy-density lithium-sulfur batteries. Herein, a freestanding paper electrode was constructed by rational integration of high conductive super-long carbon nanotubes (CNTs) and nano-sized hollow graphene spheres (GSs) through a room-temperature solution-processable method for lithium-sulfur batteries. The hollow GSs afforded close space to accommodate sulfur species, sustain the volume fluctuation during cycling, and retard the dissolution of polysulfides and parasitic shuttle. The graphene walls of GSs and super-long CNTs synergistically constructed hierarchical short-/long-range electron/ion pathways. Consequently, the as-obtained flexible paper electrode was with a high sulfur utilization of 81% (corresponding to 1346 mA h g(-1)) at a current density of 0.17 A g(-1) (0.19 mA cm(-2)), a high-rate capacity retention of 40% when the current density increased to supreme 16.7A g(-1) (18.4 mA cm(-2)), and a superior capacity retention of 89.0% over 500 cycles. This proof-of-concept research indicated the well hybridization of graphene and CNTs holds promise in the efficient use as flexible electrodes for future flexible electronics. (C) 2014 Elsevier Ltd. All rights reserved.
机译:对于可弯曲,可穿戴和可植入的电子设备,迫切需要具有高容量,高倍率能力和高循环稳定性的柔性电极的合理设计和制造。导电纳米碳作为柔性支架的整合是通向柔性高能量密度锂硫电池的一条有效途径。在此,通过室温可溶液加工的锂硫电池方法,将高导电超长碳纳米管(CNT)和纳米级中空石墨烯球(GSs)合理整合,构建了独立式纸电极。中空的GS提供了紧密的空间来容纳硫物质,在循环过程中维持体积波动,并阻止了多硫化物和寄生梭的溶解。 GS和超长CNT的石墨烯壁协同构建了分层的短/长程电子/离子路径。因此,所获得的柔性纸电极在电流密度为0.17 A g(-1)(0.19 mA cm(-2))时具有81%的高硫利用率(相当于1346 mA hg(-1))。 ,当电流密度增加到最高16.7A g(-1)(18.4 mA cm(-2))时,高效率的容量保持率为40%,在500个周期内的容量保持率为89.0%。这项概念验证研究表明,石墨烯和CNT的良好杂交有望在未来用作柔性电子产品的柔性电极中得到有效应用。 (C)2014 Elsevier Ltd.保留所有权利。

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