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首页> 外文期刊>Journal of Electronic Materials >Facile Synthesis of Mn3O4-rGO Nanocomposite As an Efficient Electrode Material for Application in Supercapacitors
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Facile Synthesis of Mn3O4-rGO Nanocomposite As an Efficient Electrode Material for Application in Supercapacitors

机译:Mn3O4-rgo纳米复合材料的容易合成作为超级电容器应用中的有效电极材料

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In this work, facile synthesis of Mn3O4-reduced graphene oxide (Mn(3)O4-rGO nanocomposite is presented, in which the reduction of graphene oxide and the nucleation of Mn3O4 on the graphene sheet occur simultaneously with the aid of hydrazine hydrate followed by heat treatment of the precipitate at 400 degrees C in air. The characterization tools prove the formation of Mn3O4-rGO nanocomposite. The average crystallite size is 17nm. When used as a supercapacitor electrode, the as-prepared Mn3O4-rGO exhibited excellent electrochemical performance with a specific capacitance of 411Fg(-1) at a current density of 1Ag(-1), high rate capability of 54% retention at 10Ag(-1), and good cycling stability (77% capacitance retention even after 3000 cycles). The electrochemical performance of Mn3O4-rGO nanocomposite is further explored by assembling a hybrid supercapacitor device using the Mn3O4-rGO nanocomposite as a positive electrode and an activated carbon as a negative electrode, the assembled-device exhibited the highest energy density of 28.35Whkg(-1) at a power density of 823Wkg(-1), and still showed an energy density of 14.66Whkg(-1) at a power density of 6597Wkg(-1). These findings make the Mn3O4-rGO nanocomposite a potential material for high-performing energy-storage systems.
机译:在该工作中,介绍了Mn 3 O 4-氧化石墨烯氧化物(Mn(3)O 4-Rgo纳米复合材料的容易合成,其中石墨烯氧化物的还原和Mn3O 4在石墨烯片上的核心借助于肼水合物,然后进行在空气中在400℃下的沉淀物热处理。表征工具证明了Mn3O4-Rgo纳米复合材料的形成。平均微​​晶尺寸为17nm。当用作超级电容器电极时,用作优异的MN3O4-rgo表现出优异的电化学性能。 411fg(-1)的特定电容在10g(-1)的电流密度,高速率为54%的速率下,且良好的循环稳定性(即使在3000次循环之后,均匀的电容保留为77%的电容保留)。该通过使用Mn3O4-Rgo纳米复合材料作为正极和作为负电极的活性炭来组装混合超级电容器装置,进一步探索Mn3O4-Rgo纳米复合材料的电化学性能。组装 - DE副在823wkg(-1)的功率密度下表现出28.35whkg(-1)的最高能量密度,并且仍显示在6597wkg(-1)的功率密度下的14.66Whkg(-1)的能量密度。这些发现使MN3O4-RGO纳米复合材料成为高性能储能系统的潜在材料。

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