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首页> 外文期刊>Journal of Electronic Materials >Porous Carbon-Based Nanocomposites Containing Fe2P Nanoparticles as Promising Materials for Supercapacitor Electrodes
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Porous Carbon-Based Nanocomposites Containing Fe2P Nanoparticles as Promising Materials for Supercapacitor Electrodes

机译:含有Fe2P纳米颗粒的多孔碳纳米复合材料作为超级电容器电极的有希望的材料

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摘要

Pseudocapacitive materials can enhance the energy storage performance of supercapacitors by making use of surface redox reactions. In recent years, different iron compounds have been investigated as pseudocapacitive materials, showing promising features for supercapacitor electrode applications. Carbon nanocomposites containing iron/phosphorus compounds have been prepared from porous carbon, followed by thermal treatment at different temperatures (700 degrees C to 1000 degrees C). The obtained supercapacitor electrodes were evaluated by electrochemical analyses using sulfuric acid electrolyte. The as-prepared nanocomposite contained nanostructured iron oxides or oxyhydroxides, whereas the nanocomposites prepared at 700 degrees C to 900 degrees C were composed of nanostructured iron phosphates. On the other hand, heat treatment at 1000 degrees C caused the formation of nanocrystalline iron phosphides (mostly Fe2P nanoparticles). The Fe-containing samples showed enhanced specific capacitance (246 F g(-1) to 447 F g(-1) at 10 A g(-1)), which can be related to the pseudocapacitive contribution of the iron compounds. The sample heat treated at 1000 degrees C exhibited favorable electrochemical performance, showing high electrical capacitance and good rate capability at 40 A g(-1). These results reveal that porous carbon/iron phosphide nanocomposites are promising materials for use in supercapacitor electrode applications.
机译:通过使用表面氧化还原反应,假壳材料可以提高超级电容器的能量储存性能。近年来,已经研究了不同的铁化合物作为假偶联材料,显示出超级电容器电极应用的有希望的特征。含有铁/磷化合物的碳纳米复合材料已由多孔碳制备,然后在不同温度下热处理(700℃至1000℃)。通过使用硫酸电解质通过电化学分析评估所获得的超级电容器电极。由纳米结构氧化铁或羟基氧化物含有纳米结构的纳米复合物,而在700℃至900℃下制备的纳米复合材料由纳米结构磷酸盐组成。另一方面,1000摄氏度的热处理导致形成纳米晶铁磷酸(多为Fe2P纳米颗粒)。含Fe的样品在10Ag(-1))下显示出增强的特定电容(246fg(-1)至447fg(-1)),其可以与铁化合物的假偶联贡献有关。在1000摄氏度下处理的样品热量表现出良好的电化学性能,显示出高电容和40Ag(-1)的良好速率能力。这些结果表明,多孔碳/磷化铁纳米复合材料是用于超级电容器电极应用的有希望的材料。

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