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The roles of lithium-philic giant nitrogen-doped graphene in protecting micron-sized silicon anode from fading

机译:亲锂大氮掺杂石墨烯在保护微米级硅阳极不褪色中的作用

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摘要

A stable Si-based anode with a high initial coulombic efficiency (ICE) for lithium-ion batteries (LIB) is critical for energy storage. In the present paper, a new scalable method is adopted in combination with giant nitrogen-doped graphene and micron-size electrode materials. We first synthesize a new type of freestanding LIB anode composed of micron-sized Si (mSi) particles wrapped by giant nitrogen-doped graphene (mSi@GNG) film. High ICE (>85%) and long cycle life (more than 80 cycles) are obtained. In the mSi@GNG composite, preferential formation of a stable solid electrolyte interphase (SEI) on the surface of graphene sheets is achieved. The formation and components of SEI are identified for the first time by using UV-resonance Raman spectroscopy and Raman mapping, which will revive the study of formation and evolution of SEI by Raman. New mechanism is proposed that the giant graphene sheets protect the mSi particles from over-lithiation and fracture. Such a simple and scalable method may also be applied to other anode systems to boost their energy and power densities for LIB.
机译:锂离子电池(LIB)具​​有高初始库仑效率(ICE)的稳定的硅基阳极对于能量存储至关重要。本文采用一种新的可扩展方法,将其与巨大的氮掺杂石墨烯和微米级电极材料相结合。我们首先合成了一种新型的独立式LIB阳极,该阳极由微米级Si(mSi)颗粒包裹,并包裹有巨大的氮掺杂石墨烯(mSi @ GNG)膜。获得了高ICE(> 85%)和长循环寿命(超过80个循环)。在mSi @ GNG复合材料中,可以在石墨烯片的表面上优先形成稳定的固体电解质中间相(SEI)。利用紫外共振拉曼光谱和拉曼作图法首次鉴定了SEI的形成和组成,这将重新激发拉曼对SEI的形成和演化的研究。提出了新的机制,即巨型石墨烯片可以保护mSi颗粒免受过度锂化和断裂的影响。这种简单且可扩展的方法也可以应用于其他阳极系统,以提高其用于LIB的能量和功率密度。

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