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Substoichiometric Silicon Nitride – An Anode Material for Li-ion Batteries Promising High Stability and High Capacity

机译:亚化学计量的氮化硅–锂离子电池的阳极材料有望实现高稳定性和高容量

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摘要

Silicon is often regarded as a likely candidate to replace graphite as the main active anode material in next-generation lithium ion batteries; however, a number of problems impacting its cycle stability have limited its commercial relevance. One approach to solving these issues involves the use of convertible silicon sub-oxides. In this work we have investigated amorphous silicon sub-nitride as an alternative convertible silicon compound by comparing the electrochemical performance of a-SiNx thin films with compositions ranging from pure Si to SiN0.89. We have found that increasing the nitrogen content gradually reduces the reversible capacity of the material, but also drastically increases its cycling stability, e.g. 40 nm a-SiN0.79 thin films exhibited a stable capacity of more than 1,500 mAh/g for 2,000 cycles. Consequently, by controlling the nitrogen content, this material has the exceptional ability to be tuned to satisfy a large range of different requirements for capacity and stability.
机译:在下一代锂离子电池中,硅通常被认为可能替代石墨作为主要的活性阳极材料。然而,影响其循环稳定性的许多问题限制了其商业应用。解决这些问题的一种方法涉及使用可转换的硅低氧化物。在这项工作中,我们通过比较a-SiNx薄膜的电化学性能与纯Si到SiN0.89范围内的成分,研究了非晶态亚氮化硅作为可转换的硅化合物。我们已经发现,增加氮含量逐渐降低了材料的可逆容量,但也大大提高了其循环稳定性,例如。 40 nm的a-SiN0.79薄膜在2,000次循环中显示出超过1,500 mAh / g的稳定容量。因此,通过控制氮含量,该材料具有出色的调节能力,可以满足大范围的容量和稳定性方面的不同要求。

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