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Co-precipitation synthesized lanthanum doped copper oxide nanoparticles for supercapacitor applications

机译:共析出合成镧掺杂氧化铜氧化铜纳米粒子,用于超级电容器应用

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Supercapacitors with metal oxide as electrode material has gained overwhelming response due to their high dependability, peculiar characteristics of producing various versatile morphologies with synergistic effect and facile design. Undoped and lanthanum doped CuO nanoparticles were synthesized by simple chemical co-precipitation technique for supercapacitor electrodes. The structural and morphological studies revealed the formation of a stable monoclinic structured CuO of crystallite size 15 - 17 nm, even as the rare earth dopant is added and nanoparticles with sheet like morphology of size ranging 40 - 120 nm. The FT - IR confirmed the fingerprint vibration modes present in the system and the dielectric analysis portrayed the temperature dependant constant and loss factor suggesting a high electropositive nature of the lanthanum ions on the grain boundaries. The electrochemical characterization was performed using cyclic voltammetry in 1M Na2SO4 aqueous electrolyte. The fabricated CuO and Cu0.99La0.01O electrode exhibited a maximum efficiency of 39 Fg~(-1) and 48 Fg~(-1) for a scan rate of 5 mV/s respectively.
机译:由于其具有金属氧化物作为电极材料的超级电容器由于其具有高可靠性,并且具有协同效应和容易设计而产生的各种通形形态的特殊特征具有压倒性的反应。通过简单的化学加沉淀技术对超级电容器电极的简单化学共沉淀技术合成了未掺杂的和镧掺杂CuO纳米粒子。结构和形态学研究表明,结晶尺寸15-17nm的稳定单斜晶体结构CuO的形成,甚至加入稀土掺杂剂和纳米颗粒,如图40-120nm的形貌。 FT - IR确认了系统中存在的指纹振动模式,介电分析描绘了温度依赖性恒定和损失因子,表明晶界镧离子的高正电性质。使用1M Na 2 SO 4水电解质中的循环伏安法进行电化学表征。制造的CuO和Cu0.99La0.01O电极分别显示出39fg〜(-1)和48 fg〜(-1)的最大效率,分别为5mV / s的扫描速率。

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