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Unravelling the role of temperature in a redox supercapacitor composed of multifarious nanoporous carbon@hydroquinone

机译:揭开温度在氧化还原超级电容器中的作用,由多种纳米多孔碳@氢醌组成

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摘要

The intermittency of renewable energy sources has led to the invention of supercapacitors. The variation of temperature impacts their working capability particularly in the regions which are too hot or too cold. Herein, the effect of temperature on the double layer formation and the redox mechanism of hydroquinone adsorbed on multifarious nanoporous carbon (MNC) have been reported. The studies have been carried out in 2 M H2SO4 electrolyte solution within a temperature range of -10 to 50 degrees C. The maximum specific capacitance of the composite material drops from 319 F g(-1) at 50 degrees C to 213 F g(-1) at -10 degrees C. An equivalent circuit model has been chosen to fit the EIS spectra at the double layer potential and formal potential. Subsequently, an Arrhenius type plot has been constructed to calculate the activation energy of the system which revealed 8.69 and 7.77 kJ mol(-1) activation energy at the formal potential and double layer potential respectively. The composite also shows excellent cyclability even at enhanced temperatures, which is a major requirement for the application of these supercapacitors in vehicles and other electrical equipment.
机译:可再生能源的间歇导致超级电容器的发明。温度的变化会影响其工作能力,特别是在太热或过于冷的区域中。这里,已经报道了温度对双层形成的影响和吸附在多种纳米多孔碳(MNC)上的氢醌的氧化还原机制。在-10至50℃的温度范围内在2M H 2 SO 4电解质溶液中进行了研究。复合材料的最大比电容在50℃至213Fg( -1)在-10摄氏度下,已选择等效电路模型以适合双层电位和正式电位的EIS光谱。随后,已经构建了Arrhenius型图以计算在正式电位和双层电位处显示8.69和7.77kJ摩尔(-1)激活能量的系统的激活能量。即使在增强的温度下,复合材料也显示出优异的可循环性,这是应用这些超级电容器在车辆和其他电气设备中的主要要求。

著录项

  • 来源
    《RSC Advances》 |2020年第3期|共12页
  • 作者

    Barua Aditi; Paul Amit;

  • 作者单位

    Indian Inst Sci Educ &

    Res Dept Chem Bhopal 462066 MP India;

    Indian Inst Sci Educ &

    Res Dept Chem Bhopal 462066 MP India;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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