首页> 外文期刊>Journal of Sol-Gel Science and Technology >Facile preparation of Mn3O4/rGO hybrid nanocomposite by sol-gel in situ reduction method with enhanced energy storage performance for supercapacitor applications
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Facile preparation of Mn3O4/rGO hybrid nanocomposite by sol-gel in situ reduction method with enhanced energy storage performance for supercapacitor applications

机译:通过溶胶 - 凝胶制备Mn3O4 / Rgo杂交纳米复合材料的原位还原方法,具有增强的超级电容器应用的能量储存性能

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Pure Mn3O4 and Mn3O4/rGO hybrid nanocomposites were synthesized by sol-gel based in situ reduction method. The structural properties of pure and nanocomposite materials were studied by XRD. The crystallite size of the Mn3O4 nanoparticle was reduced in the nanocomposite as observed by XRD analysis. SEM and TEM images depict the spherical morphology of pristine Mn3O4 nanoparticles and decoration of Mn3O4 nanoparticle on rGO sheets. Raman spectra confirm the formation of Mn3O4/rGO nanohybrid composites as the A(g) mode of Mn3O4, D, and G bands of rGO were observed in the spectra. FTIR spectra confirm the presence of various functional groups of GO and the in situ reduction of GO into rGO. The electrochemical properties of the Mn3O4 and Mn3O4/rGO composites were investigated by cyclic voltammetry analysis using 1 M KOH as an electrolyte. The cyclic voltammetry results show the pseudocapacitance behavior of Mn3O4, whereas the hybrid nanocomposite exhibits the combined behaviors of pseudocapacitance and EDLC. The chronopotentiometry analysis demonstrated that the specific capacitance of Mn3O4/rGO nanocomposite (427 F g(-1)) was relatively higher than that of Mn3O4 (136 F g(-1)) at 1 A/g. The impact of KOH electrolyte over the specific capacitance of a electrode material was comparatively analyzed with different electrolytes. The enhancement in the specific capacitance of the nanohybrid composite was attributed due to the strong electrode-electrolyte interaction of hybrid electrode material and synergetic effect of Mn3O4 and rGO.
机译:通过基于原位还原方法,通过溶胶 - 凝胶合成纯Mn3O4和Mn3O4 / Rgo杂化纳米复合材料。通过XRD研究了纯净和纳米复合材料的结构性能。通过XRD分析观察到的纳米复合材料中,将Mn3O4纳米颗粒的微晶尺寸减少。 SEM和TEM图像描绘了RGO片材上丙氨酸Mn3O4纳米颗粒的球形形态和Mn3O4纳米粒子的装饰。拉曼光谱证实了Mn3O4 / Rgo纳米组合材料的形成,因为在光谱中观察到RGO的Mn3O4,D和G带的A(g)模式。 FTIR光谱证实存在各种功能组的GO和原位减少进入RGO。通过使用1M KOH作为电解质,通过循环伏安法分析研究Mn3O4和Mn3O4 / Rgo复合材料的电化学性质。循环伏安法结果显示MN3O4的假偶联行为,而杂交纳米复合材料表现出假偶联和EDLC的组合行为。计时间计量分析表明,Mn3O4 / Rgo纳米复合材料的比电容(427fg(-1))相对高于Mn3O4(136°F(-1))的1A / g。用不同的电解质相比分析KOH电解质对电极材料的比电容的影响。由于杂化电极材料的强电极 - 电解质相互作用和Mn3O4和Rgo的协同作用,纳米混合物的比电容的增强归因于含有杂交电极材料的强电极 - 电解质相互作用。

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