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SnS/C nanocomposites for high-performance sodium ion battery anodes

机译:SnS / C纳米复合材料,用于高性能钠离子电池负极

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Sodium-ion batteries have been considered as one of the most promising types of batteries, beyond lithium-ion batteries, for large-scale energy storage applications. However, their deployment hinges on the development of new anode materials, since it has been shown that many important anode materials employed in lithium ion batteries, such as graphite and silicon, are inadequate for sodium-ion batteries. We have simply prepared novel SnS/C nanocomposites through a top-down approach as anode materials for sodium-ion batteries. Their electrochemical performance has been significantly improved when compared to bare SnS, especially in terms of cycling stability and rate capabilities. SnS/C nanocomposites exhibit excellent capacity retention, at various current rates, and deliver capacities as high as 400 mA h g ~(?1) even at the high current density of 800 mA g ~(?1) (2C). Ex situ transmission electron microscopy, X-ray diffraction and operando X-ray absorption near edge structure studies have been performed in order to unravel the reaction mechanism of the SnS/C nanocomposites.
机译:除了锂离子电池以外,钠离子电池也被认为是最有前途的电池类型之一,适用于大规模储能应用。但是,由于已经表明锂离子电池中使用的许多重要阳极材料(例如石墨和硅)不足以用作钠离子电池,因此它们的部署取决于新阳极材料的开发。我们通过自上而下的方法简单地制备了新型SnS / C纳米复合材料,作为钠离子电池的负极材料。与裸露的SnS相比,它们的电化学性能得到了显着改善,特别是在循环稳定性和倍率性能方面。 SnS / C纳米复合材料在各种电流速率下仍具有出色的容量保持能力,即使在800 mA g〜(?1)(2C)的高电流密度下,也能提供高达400 mA h g〜(?1)的容量。为了阐明SnS / C纳米复合材料的反应机理,已经进行了异位透射电子显微镜,X射线衍射和近侧结构X射线吸收研究。

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