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首页> 外文期刊>Batteries >Silicon/Mesoporous Carbon (Si/MC) Derived from Phenolic Resin for High Energy Anode Materials for Li-ion Batteries: Role of HF Etching and Vinylene Carbonate (VC) Additive
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Silicon/Mesoporous Carbon (Si/MC) Derived from Phenolic Resin for High Energy Anode Materials for Li-ion Batteries: Role of HF Etching and Vinylene Carbonate (VC) Additive

机译:酚醛树脂衍生的硅/中孔碳(Si / MC),用于锂离子电池的高能阳极材料:HF蚀刻和碳酸亚乙烯酯(VC)添加剂的作用

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摘要

Silicon/mesoporous carbon (Si/MC) composites with optimum Si content, in which the volumetric energy density would be maximized, while volume changes would be minimized, have been developed. The composites were prepared by dispersing Si nanoparticles in a phenolic resin as a carbon source, subsequent carbonization, and etching with hydrofluoric acid (HF). Special attention was paid to understanding the role of HF etching as post-treatment to provide additional void spaces in the composites. The etching process was shown to reduce the SiO 2 native layer on the Si nanoparticles, resulting in increased porosity in comparison to the non-etched composite material. For cell optimization, vinylene carbonate (VC) was employed as an electrolyte additive to build a stable solid electrolyte interphase (SEI) layer on the electrode. The composition of the SEI layer on Si/MC electrodes, cycled with and without VC-containing electrolytes for several cycles, was then comprehensively investigated by using ex-situ XPS. The SEI layers on the electrodes working with VC-containing electrolyte were more stable than those in configurations without VC; this explains why our sample with VC exhibits lower irreversible capacity losses after several cycles. The optimized Si/MC composites exhibit a reversible capacity of ~800 mAhg ?1 with an average coulombic efficiency of ~99 % over 400 cycles at C/10.
机译:已经开发出具有最佳Si含量的硅/中碳(Si / MC)复合材料,其中体积能量密度将最大化,而体积变化将最小化。通过将Si纳米颗粒分散在作为碳源的酚醛树脂中,随后碳化并用氢氟酸(HF)进行蚀刻来制备复合材料。要特别注意了解HF蚀刻作为后处理在复合材料中提供额外空隙空间的作用。与未蚀刻的复合材料相比,蚀刻工艺显示减少了Si纳米颗粒上的SiO 2本征层,从而导致孔隙率增加。为了优化电池,采用碳酸亚乙烯酯(VC)作为电解质添加剂,以在电极上建立稳定的固体电解质中间相(SEI)层。然后,通过使用异位XPS全面研究了在含/不含含VC的电解质下循环运行的Si / MC电极上SEI层的组成。与不含VC的配置相比,使用含VC的电解质的电极上的SEI层更稳定;这解释了为什么我们的带有VC的样品在几个循环后表现出较低的不可逆容量损失。优化的Si / MC复合材料在C / 10的400个循环中表现出约800 mAhg?1的可逆容量,平均库仑效率约99%。

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