确定泡沫镍上沉积的NiCoMn三元金属氧化物的最佳水热合成温度和锰含量

M. Nooshadi , M. Izadi , Z. Yousefi , V. Salarvand , F. Talebi , M. Saghafi , M. Noghani , A. Moghanian , D. Brabazon
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引用次数: 0

摘要

利用化石燃料以外的替代能源供应能源已成为人类社会的基本需求之一。为此,有必要储存这些替代能源的能量。使用超级电容器作为储能系统是实现这一目标的重要途径。本研究采用水热法,在泡沫镍床上以不同的摩尔比、时间和温度合成了三金属结构的镍钴锰。然后通过电化学测试优化金属摩尔比、合成温度和时间,研究了样品的结构特征和电化学性能。在不同时间合成的样品的纳米结构是片状的,这些片状的样品被放置在一起,形成了一个纳米片网络。Ni8Co2Mn0.5 %(190 ℃-15h)样品的电化学静态充放电性能优于其他样品。该样品的放电时间最长,因此容量最高(439.12 F.g-1)。电化学阻抗谱测试与其他测试结果一致,显示该样品的电阻较低,为 65.24 Ω。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determining the optimal hydrothermal synthesis temperature and manganese percentage in the NiCoMn ternary-metal oxide deposited on nickel foam for pseudocapacitor applications
Supplying energy from alternative sources than fossil fuels has become one of the essential needs of human society. To do this, it is necessary to store energy from these alternative sources. The use of pesudocapacitors as an energy storage system is a valuable route for this. In this study, the trimetallic structure of NiCoMn was synthesized on a nickel foam bed with different molar ratios, time, and temperature with the hydrothermal method. Then by optimizing the molar ratios of metals, synthesis temperature, and time using electrochemical tests, the structural characteristics and electrochemical performance of the samples were investigated. The nanostructure of the synthesized samples at various times was in the form of sheets that were placed together creating a network of nanosheets. The electrochemical galvanostatic charge-discharge performance of the Ni8Co2Mn0.5 % (190 ℃-15h) sample was better than for the other samples. This sample had the longest discharge time and as a result, the highest capacity (439.12 F.g−1). The electrochemical impedance spectroscopy test, in agreement with other tests, showed a low resistance of 65.24 Ω; for this sample.
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