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Solid-State Fabrication of SnS2/C Nanospheres for High-Performance Sodium Ion Battery Anode

机译:高性能钠离子电池阳极SnS2 / C纳米球的固态制备

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摘要

Tin disulfide (SnS2) has emerged as a promising anode material for sodium ion batteries (NIBs) due to its unique layered structure, high theoretical capacity, and low cost. Conventional SnS2 nanomaterials are normally synthesized using hydrothermal method, which is time-consuming and difficult to scale up for mass production. In this study, we develop a simple solid-state reaction method, in which the carbon-coated SnS2 (SnS2/C) anode materials were synthesized by annealing metallic Sn, sulfur powder, and polyacrylonitrile in a sealed vacuum glass tube. The SnS2/C nanospheres with unique layered structure exhibit a high reversible capacity of 660 mAh g(-1) at a current density of 50 mA g(-1) and maintain at 570 mAh g(-1) for 100 cycles with a degradation rate of 0.14% per cycle, demonstrating one of the best cycling performances in all reported SnS2/C anodes for NIBs to date. The superior cycling stability of SnS2/C electrode is attributed to the stable nanosphere morphology and structural integrity during charge/discharge cycles as evidenced by ex situ characterization.
机译:由于其独特的层状结构,高理论容量和低成本,二硫化锡(SnS2)已成为一种有前景的钠离子电池(NIB)负极材料。常规的SnS 2纳米材料通常使用水热法合成,这既费时又难以大规模生产。在这项研究中,我们开发了一种简单的固态反应方法,其中通过在密封的真空玻璃管中对金属Sn,硫粉和聚丙烯腈进行退火来合成碳包覆的SnS2(SnS2 / C)阳极材料。具有独特的层状结构的SnS2 / C纳米球在50 mA g(-1)的电流密度下显示660 mAh g(-1)的高可逆容量,并在570 mAh g(-1)的条件下保持100个循环,并具有降解能力速率为每周期0.14%,这是迄今为止所有报道的NIB的SnS2 / C阳极中最好的循环性能之一。 SnS2 / C电极优异的循环稳定性归因于异位表征,证明其在充电/放电循环过程中具有稳定的纳米球形态和结构完整性。

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