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Synthesis of Honeycomb-Like Co3O4 Nanosheets with Excellent Supercapacitive Performance by Morphological Controlling Derived from the Alkaline Source Ratio

机译:碱性源比例的形态学控制合成具有超强电容性能的蜂窝状Co3O4纳米片

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摘要

Honeycomb-like Co3O4 nanosheets with high specific surface area were successfully synthesized on porous nickel foam by the facile hydrothermal method followed by an annealing treatment (300 °C), which were used as high-performance supercapacitor electrodes. The effects of the mole ratio of hexamethylenetetramine (HMT) and Co(NO3)2 (1:1, 2:1, 3:1, 4:1, 5:1 and 6:1) as the reactants on the morphological evolution and electrochemical performance of the electrodes were investigated in detail. X-ray diffractometry (XRD), transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS), and scanning electron microscopy (SEM) were applied to characterize the structure and morphology of the products. The electrochemical performance was measured by cyclic voltammetry (CV) and galvanostatic charge/discharge. The mole ratio of HMT and Co(NO3)2 produced a significant effect on the morphological evolution of Co3O4. The morphological evolution of Co3O4 with the increase in the mole ratio was followed: the nanosheets accompanied with a large number of spherical nanoparticles → the formation of some strip-like particles due to the agglomeration of spherical nanoparticles → the formation of new nanosheets resulting from the growth of strip-like particles → the formation of coarse flower-like particles owing to the connection among the nanosheets → the nanosheets gradually covered with flower-like particles. Accompanied with the change, the specific surface area was increased firstly, and then decreased. A maximum was obtained at a HMT and Co(NO3)2 mole ratio of 4:1. The evolution in morphology of Co3O4 was responsible for the change in electrochemical performance of the electrode. The specific capacitance value of the electrode prepared at a HMT and Co(NO3)2 mole ratio of 4:1 was highest (743.00 F·g−1 at 1 A·g−1 in the galvanostatic charge/discharge test). The similar result was also observed in the CV test with a scanning rate of 5 mV·s−1. Moreover, the electrode also demonstrated an excellent cyclic performance, in which about 97% of the initial specific capacitance remained at 1 A·g−1 for 500 cycles in the galvanostatic charge/discharge test. This excellent electrochemical performance was ascribed to high specific surface area of Co3O4 nanosheets that provide added channels and space for the ions transportation.
机译:通过简便的水热法,然后经退火处理(300°C),成功地在多孔镍泡沫上合成了具有高比表面积的蜂窝状Co3O4纳米片,用作高性能超级电容器电极。六亚甲基四胺(HMT)和Co(NO3)2(1:1、2:1、3:1、4:1、5:1和6:1)的摩尔比对形态演变和结构的影响详细研究了电极的电化学性能。 X射线衍射法(XRD),透射电子显微镜(TEM),X射线光电子能谱(XPS)和扫描电子显微镜(SEM)用来表征产品的结构和形态。通过循环伏安法(CV)和恒电流充电/放电测量电化学性能。 HMT和Co(NO3)2的摩尔比对Co3O4的形态演化产生了显着影响。随着摩尔比的增加,Co3O4的形态演变如下:伴随着大量球形纳米粒子的纳米片→由于球形纳米粒子的团聚而形成了一些条状粒子→由纳米粒子形成了新的纳米片。条状粒子的生长→由于纳米片之间的连接而形成粗花状粒子→纳米片逐渐被花状粒子覆盖。伴随该变化,比表面积首先增加,然后减小。在HMT和Co(NO3)2摩尔比为4:1时获得最大值。 Co3O4的形态演变是导致电极电化学性能发生变化的原因。以HMT和Co(NO3)2摩尔比为4:1制备的电极的比电容值最高(743.00 F·g -1 在1 A·g -1 < / sup>在恒电流充放电测试中)。在CV测试中,以5 mV·s -1 的扫描速率也观察到了类似的结果。此外,该电极还表现出优异的循环性能,其中在恒电流充电/放电测试中,约有97%的初始比电容在500次循环中保持在1 A·g -1 。优异的电化学性能归因于Co 3 O 4 纳米片的高比表面积,可为离子传输提供更多的通道和空间。

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