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Nano Hard Carbon Anodes for Sodium-Ion Batteries

机译:用于钠离子电池的纳米硬碳阳极

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摘要

A hindrance to the practical use of sodium-ion batteries is the lack of adequate anode materials. By utilizing the co-intercalation reaction, graphite, which is the most common anode material of lithium-ion batteries, was used for storing sodium ion. However, its performance, such as reversible capacity and coulombic efficiency, remains unsatisfactory for practical needs. Therefore, to overcome these drawbacks, a new carbon material was synthesized so that co-intercalation could occur efficiently. This carbon material has the same morphology as carbon black; that is, it has a wide pathway due to a turbostratic structure, and a short pathway due to small primary particles that allows the co-intercalation reaction to occur efficiently. Additionally, due to the numerous voids present in the inner amorphous structure, the sodium storage capacity was greatly increased. Furthermore, owing to the coarse co-intercalation reaction due to the surface pore structure, the formation of solid-electrolyte interphase was greatly suppressed and the first cycle coulombic efficiency reached 80%. This study shows that the carbon material alone can be used to design good electrode materials for sodium-ion batteries without the use of next-generation materials.
机译:钠离子电池实际使用的障碍是缺乏适当的负极材料。通过利用共嵌入反应,使用锂离子电池中最常见的负极材料石墨来存储钠离子。但是,其性能,例如可逆容量和库仑效率,仍然不能满足实际需求。因此,为了克服这些缺点,合成了新的碳材料,使得可以有效地发生共嵌入。这种碳材料的形态与炭黑相同。即,由于具有涡轮层状结构,因此具有较宽的路径,并且由于较小的一次粒子而具有较短的路径,从而可以有效地进行共嵌入反应。另外,由于内部无定形结构中存在大量空隙,因此钠储存容量大大增加。此外,由于由于表面孔结构引起的粗共插反应,大大抑制了固体-电解质中间相的形成,并且第一循环库仑效率达到80%。这项研究表明,仅碳材料就可以用于设计钠离子电池的优质电极材料,而无需使用下一代材料。

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