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Electrochemical properties of heat-treated polymer-derived SiCN anode for lithium ion batteries

机译:热处理的聚合物来源的锂离子电池用SiCN阳极的电化学性能

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摘要

Silicon-carbon-nitrogen material (SiCN) is pyrolyzed from polysilylethylenediamine (PSEDA) derivation, followed by a heat-treating process at 1000℃ in Ar atmosphere. This heat-treated SiCN material has an excellent electrochemical performance as an anode for lithium ion batteries. Charge-discharge cycle measurements show that the heat-treated SiCN material exhibits a high first cycle discharge capacity of 829.0mAhg~(-1) and stays between 400 and 370mAhg~(-1) after 30 cycles. The discharge capacity remains above 300 mAhg~(-1) at the high current density of 80 and 160 mAg~(-1). These values are higher than untreated SiCN and commercial graphite anodes, which indicates that the heat-treating process improves the charge-discharge capacity, cycle stability and high-rate ability of SiCN anode. It is seemed that changes of SiCN structure, the formation of loose nano-holes on material surface and the formation of graphitic carbon phase in heat-treating process contribute to the improvement of electrochemical properties for SiCN anode.
机译:硅碳氮材料(SiCN)由聚甲硅烷基乙二胺(PSEDA)衍生热解,然后在Ar气氛中于1000℃进行热处理。该热处理的SiCN材料作为锂离子电池的负极具有优异的电化学性能。充放电循环测量表明,经热处理的SiCN材料具有很高的第一循环放电容量,为829.0mAhg〜(-1),经过30个循环后仍保持在400至370mAhg〜(-1)之间。在80和160 mAg〜(-1)的高电流密度下,放电容量保持在300 mAhg〜(-1)以上。这些值高于未处理的SiCN阳极和商用石墨阳极,这表明热处理工艺改善了SiCN阳极的充放电容量,循环稳定性和高倍率能力。热处理过程中SiCN结构的变化,材料表面上疏松的纳米孔的形成以及石墨碳相的形成似乎有助于SiCN阳极的电化学性能的改善。

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