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Hierarchical Co3O4/Co(OH)(2) Nanoflakes as a Supercapacitor Electrode: Experimental and Semi-Empirical Model

机译:分层Co3O4 / Co(OH)(2)纳米薄片作为超级电容器电极:实验和半经验模型

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In this research, facile and low cost synthesis methods, electrodeposition at constant current density and anodization at various applied voltages, were used to produce hierarchical cobalt oxide/hydroxide nanoflakes on top of porous anodized cobalt layer. The maximum electrochemical capacitance of 601 mF cm(-2) at scan rate of 2 mV s(-1) was achieved for 30 V optimized anodization applied voltage with high stability. Morphology and surface chemical composition were determined by scanning electron microscopy (SEM) and X-ray photoelectron spectroscopy (XPS) analysis. The size, thickness, and density of nanoflakes, as well as length of the porous anodized Co layer were measured about 460 +/- 45 nm, 52 +/- 5 nm, 22 +/- 3 mu m(-2), and 3.4 +/- 0.3 mu m for the optimized anodization voltage, respectively. Moreover, the effect of anodization voltage on the resulting supercapacitance was modeled by using the Butler-Volmer formalism. The behavior of the modeled capacitance in different anodization voltages was in good agreement with the measured experimental data, and it was found that the role and contribution of the porous morphology was more decisive than structure of nanoflakes in the supercapacitance application.
机译:在这项研究中,使用简便且低成本的合成方法,在恒定电流密度下进行电沉积并在各种施加电压下进行阳极氧化,在多孔阳极氧化钴层的顶部制备分层的氧化钴/氢氧化物纳米片。对于具有高稳定性的30 V优化阳极氧化施加电压,在2 mV s(-1)的扫描速率下可获得601 mF cm(-2)的最大电化学电容。通过扫描电子显微镜(SEM)和X射线光电子能谱(XPS)分析来确定形态和表面化学组成。测量的纳米薄片的大小,厚度和密度以及多孔阳极氧化Co层的长度约为460 +/- 45 nm,52 +/- 5 nm,22 +/- 3μm(-2)和优化的阳极氧化电压分别为3.4 +/- 0.3μm。此外,使用Butler-Volmer形式主义对阳极氧化电压对所得超级电容的影响进行了建模。在不同的阳极氧化电压下,建模电容的行为与实测实验数据吻合良好,并且发现在超级电容应用中,多孔形态的作用和贡献比纳米薄片的结构更具决定性。

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