纯和掺铝NiO/氧化石墨烯薄膜在接枝油片上的赝电容行为

N.V. Srinivasa , Anjana Simon , Basavaraj Angadi , H.M. Mahesh , Shivaraj Yallapa
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摘要

由于对有效储能装置的需求日益增长,金属氧化物纳米膜作为下一代超级电容器的重要组成部分引起了人们的兴趣。电极是通过在氧化石墨烯(GO)上热沉积纯的和掺杂al的NiO来制备的,然后将NiO涂层的GO滴铸到具有改善电化学性能的接枝油片上。利用x射线衍射、傅里叶变换红外光谱、拉曼光谱和扫描电子显微镜(SEM)对复合电极进行了表征,证实了纳米级NiO涂层的形成以及Ni-O和go相关振动模式的存在。2 M和3 M KOH电解质的电化学评价显示出高度的假电容行为。在2 M KOH溶液中,在扫描速率为10 mV/s的循环伏安法下,未掺杂、掺2% al和掺4% al的NiO电极的比电容值分别为172、137.53和89.92 F/g;3 M KOH分别为181.25、157.05、93.75 F/g。所有电极都表现出优异的循环稳定性,在100次充放电循环后,以100 mV/s的扫描速率保持其性能。这些结果表明,NiO/ go涂层接枝油电极,特别是未掺杂的NiO,是高性能超级电容器应用的有希望的候选者。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Pseudocapacitive behavior of pure and Al-doped NiO/Graphene oxide films on grafoil sheet

Pseudocapacitive behavior of pure and Al-doped NiO/Graphene oxide films on grafoil sheet
Metal oxide nanofilms have drawn interest as essential components for next-generation supercapacitors due to growing demands for effective energy storage devices. Electrodes were fabricated by thermally depositing pure and Al-doped NiO onto graphene oxide (GO), followed by drop-casting the NiO-coated GO onto a grafoil sheet with improved electrochemical properties. The resulting composite electrodes were characterized using X-ray diffraction, Fourier transform infrared spectroscopy, Raman spectroscopy, and Scanning Electron Microscopy (SEM), confirming the formation of nanoscale NiO coatings and the presence of Ni–O and GO-related vibrational modes. Electrochemical evaluation in 2 M and 3 M KOH electrolytes revealed highly pseudocapacitive behavior. Specific capacitance values obtained from cyclic voltammetry at a scan rate of 10 mV/s were 172, 137.53, and 89.92 F/g for undoped, 2% Al-doped, and 4% Al-doped NiO electrodes, respectively, in 2 M KOH; and 181.25, 157.05, and 93.75 F/g in 3 M KOH. All electrodes demonstrated excellent cycling stability, retaining their performance after 100 charge–discharge cycles at a scan rate of 100 mV/s. These results suggest that NiO/GO-coated grafoil electrodes, particularly undoped NiO, are promising candidates for high-performance supercapacitor applications.
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