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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Stacked-graphene layers as engineered solid-electrolyte interphase (SEI) grown by chemical vapour deposition for lithium-ion batteries
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Stacked-graphene layers as engineered solid-electrolyte interphase (SEI) grown by chemical vapour deposition for lithium-ion batteries

机译:堆叠的 - 石墨烯层作为通过化学气相沉积的锂离子电池生长的工程固体电解质相互作用(SEI)

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摘要

A multi-layer of stacked-graphene (8 layers of basal planes) grown by chemical vapour deposition (CVD) is introduced as an artificial solid electrolyte interphase (SEI) layer onto a transition metal oxide cathode for lithium-ion batteries. The basal planes are generally regarded as a strong physical barrier that prevents lithium-ion diffusion, although it is believed that a small number of lithium-ions can migrate through the defect sites of the stacked layers. Interestingly, the unique design of the stacked-graphene perpendicular to the basal planes not only effectively suppresses the formation of instable SEI layers, but also achieves a reasonable amount of battery charge capacities. To correctly understand the impact from the stacked design, we further studied the rate kinetics difference between slow cycles (0.125 C - 0.250 C - 0.400 C - 0.125 C) and rapid cycles (C - 2 C - 3 C - C). We propose that the clap-net like design of the stacked-graphene could enable the effective conducting pathway for electron transport, while protecting the active material inside. The magnetic measurements reveal the efficient Li+ (de) intercalation into graphene-layers. The artificial SEI also renders the electrode/electrolyte interface more stable against dynamic rate changes. The present approach provides a particular advantage in developing high stability battery that can be utilized at various charge rates. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通过化学气相沉积(CVD)生长的多层堆叠 - 石墨烯(8层基层)作为人工固体电解质相互关节(SEI)层引入过渡金属氧化物阴极上,用于锂离子电池。基础平面通常被认为是一种强大的物理屏障,其防止锂离子扩散,但据信少量锂离子可以通过堆叠层的缺陷部位迁移。有趣的是,垂直于基底平面的堆叠 - 石墨烯的独特设计不仅有效地抑制了不稳定的SEI层的形成,而且还实现了合理的电池充电能力。要正确地了解堆叠设计的影响,我们进一步研究了缓慢循环(0.125c - & 0.250c - & 0.125 c)和快速循环(c - & 2 c - & 3 c - & c)。我们建议堆叠 - 石墨烯的拍摄网设计可以使电子传输有效导电通路,同时保护内部的活性材料。磁性测量将高效的Li +(De)插入液体嵌入到石墨烯层中。人工SEI还使电极/电解质界面更稳定地免于动态率变化。本方法提供了在开发可以以各种电荷率使用的高稳定性电池提供特定的优点。 (c)2018年elestvier有限公司保留所有权利。

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