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首页> 外文期刊>Journal of materials science >Electrosynthesis of highly porous NiO nanostructure through pulse cathodic electrochemical deposition: heat-treatment (PCED-HT) method with excellent supercapacitive performance
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Electrosynthesis of highly porous NiO nanostructure through pulse cathodic electrochemical deposition: heat-treatment (PCED-HT) method with excellent supercapacitive performance

机译:通过脉冲阴极电化学沉积电合成高度多孔的NiO纳米结构:具有优异超电容性能的热处理(PCED-HT)方法

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摘要

A highly porous NiO nanostructure is prepared through a pulse cathodic electrochemical deposition/ heat-treatment (PCED-HT) method. Based on the method first a hydroxide precursor was deposited from an additive-free 0.005 M Ni(NO_3)_2 through a pulse-base-electro-generation procedure. The pulsed deposition experiments were performed at t_(on)= 1 s, t_(off)= 1 s, i_(peak) = 50 mA cm~(-2), T = 80°C and 30 min. The green hydroxide powder was then calcined at 500 °C for 3 h and to obtain a black oxide powder. The mechanisms for the deposition of the nickel hydroxide precursor during the PCED step, as well as that of the formation of the final oxide product during the HT step were studied. The structural and morphological properties of the product were evaluated through XRD, IR and SEM. The results revealed the precursor and the product to be porous p-nickel hydroxide and porous cubic crystalline nickel oxide nanostructures, respectively. The super-capac-itive performance NiO-based electrode was evaluated by cyclic voltammetry and the galvanostatic charge-discharge techniques in 1 M KOH electrolyte. It was observed that the fabricated porous NiO electrode exhibits capacitive behavior of low AE_p value of 32 mV and width potential window (AV = 0.8 V), and is capable to deliver high specific capacitance of 1056.4 F g~(-1) and capacity retention of 89.7% after 3000 GCD cycles at current load of 3 A g~(-1), and energy density and power density as high as 82.3 Wh/ Kg and 0.60 W/g, respectively.
机译:通过脉冲阴极电化学沉积/热处理(PCED-HT)方法制备了高度多孔的NiO纳米结构。基于该方法,首先通过脉冲基电生成程序从无添加剂的0.005 M Ni(NO_3)_2沉积氢氧化物前体。在t_(on)= 1 s,t_(off)= 1 s,i_(peak)= 50 mA cm〜(-2),T = 80°C和30 min时进行脉冲沉积实验。然后将绿色氢氧化物粉末在500°C下煅烧3小时,得到黑色氧化物粉末。研究了在PCED步骤中沉积氢氧化镍前驱体的机理,以及在HT步骤中形成最终氧化物产物的机理。通过XRD,IR和SEM评价产物的结构和形态学性质。结果表明,前体和产物分别是多孔的对镍氢氧化物和多孔的立方晶状氧化镍纳米结构。通过循环伏安法和恒电流充放电技术对1 M KOH电解质中的NiO超级电容性能进行了评估。据观察,所制备的多孔NiO电极表现出低的AE_p值为32 mV的电容行为和宽度电势窗口(AV = 0.8 V),并且能够提供1056.4 F g〜(-1)的高比电容并保持容量在3 A g〜(-1)的电流负载下经过3000次GCD循环后,其能量密度和功率密度分别高达82.3 Wh / Kg和0.60 W / g,达到89.7%。

著录项

  • 来源
    《Journal of materials science》 |2017年第11期|8144-8154|共11页
  • 作者单位

    NFCRS, Nuclear Science and Technology Research Institute (NSTRI), P.O. Box 14395-834, Tehran, Iran;

    Center of Excellence in Electrochemistry, University of Tehran, Tehran, Iran,Biosensor Research Center, Endocrinology and Metabolism Molecular-Cellular Sciences Institute, Tehran University of Medical Sciences, Tehran, Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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