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首页> 外文期刊>New Journal of Chemistry >Vesicular hydrogen silsesquioxane-mediated synthesis of nanocrystalline silicon dispersed in a mesoporous silica/suboxide matrix, with potential for electrochemical applications
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Vesicular hydrogen silsesquioxane-mediated synthesis of nanocrystalline silicon dispersed in a mesoporous silica/suboxide matrix, with potential for electrochemical applications

机译:囊泡倍半硅氧烷介导的纳米晶硅分散在介孔二氧化硅/亚氧化物基体中的合成,具有电化学应用潜力

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Room temperature hydrolysis of triethoxysilane (TES) in the presence of pluronic P-123 (PEO20-PPO70- PEO20) triblock copolymer under acidic conditions resulted in the formation of soft nanoscale vesicles with thin (<10 nm) hydrogen silsesquioxane (HSiO15)(n), gel walls. FTIR and Si-29 MAS NMR showed that pyrolysis of this material at 1000 degrees C in H-2/Ar atmosphere led to decomposition of the hydrogen silsesquioxane with the resulting formation of a silicon suboxide surrounding Si nanocrystals, all embedded in a SiO2 matrix. SEM, TEM, BET and SAXS measurements showed that this vesicular Si@SiOx SiO2 composite material had a high surface area and interconnected mesoporous structure. Nanocrystalline silicon was confirmed by XRD after the high temperature pyrolysis. An optimum in Li-ion battery half-cell performance was observed after the pyrolysis at 1000 degrees C, apparently attributable to the mesoporous structure and silicon nanocrystals. The effect of the polymer binders sodium carboxymethyl cellulose (CMC) and polyacrylic acid (PM) on the cyclic performance was investigated by cyclic voltammetry and electrochemical impedance spectroscopy. Results suggest that the formation of the solid electrolyte interface layer is slower in the case of PAA, resulting in lower resistance to lithium diffusion at the interface.
机译:在酸性条件下,在Puronic P-123(PEO20-PPO70-PEO20)三嵌段共聚物存在下,室温下三乙氧基硅烷(TES)的室温水解导致形成具有薄(<10 nm)氢倍半硅氧烷(HSiO15)的软纳米级囊泡(n ),凝胶壁。 FTIR和Si-29 MAS NMR表明,该材料在H-2 / Ar气氛中在1000摄氏度下热解导致氢倍半硅氧烷分解,并形成包围Si纳米晶体的低氧化硅,所有均嵌入SiO2基质中。 SEM,TEM,BET和SAXS测量表明,这种囊状Si @ SiOx SiO2复合材料具有较高的表面积和相互连接的介孔结构。高温热解后,通过XRD确认了纳米晶硅。在1000摄氏度下热解后,锂离子电池的半电池性能最佳,这显然归因于介孔结构和硅纳米晶体。通过循环伏安法和电化学阻抗谱研究了聚合物粘合剂羧甲基纤维素钠(CMC)和聚丙烯酸(PM)对循环性能的影响。结果表明,在PAA的情况下,固体电解质界面层的形成较慢,导致对锂在界面处的扩散的抵抗力降低。

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