...
首页> 外文期刊>Scientific reports. >Natural biomass derived hard carbon and activated carbons as electrochemical supercapacitor electrodes
【24h】

Natural biomass derived hard carbon and activated carbons as electrochemical supercapacitor electrodes

机译:天然生物量衍生硬碳和活性炭作为电化学超级电容器电极

获取原文
           

摘要

With every moving day, the aspect that is going to be the most important for modern science and technology is the means to supply sufficient energy for all the scientific applications. As the resource of fossil fuel is draining out fast, an alternative is always required to satisfy the needs of the future world. Limited resources also force to innovate something that can utilise the resource more efficiently. This work is based on a simple synthesis route of biomass derived hard carbon and to exploring the possibility of using it as electrochemical supercapacitors. A cheap, eco-friendly and easily synthesized carbon material is utilized as electrode for electrochemical energy-storage. Four different hard carbons were synthesized from KOH activated banana stem (KHC), phosphoric acid treated banana stem derived carbons (PHC), corn-cob derived hard carbon (CHC) and potato starch derived hard carbons (SHC) and tested as supercapacitor electrodes. KOH-activated hard carbon has provided 479.23?F/g specific capacitance as calculated from its cycle voltammograms. A detailed analysis is done to correlate the results obtained with the material property. Overall, this work provides an in depth analysis of the science behind the components of an electrochemical energy-storage system as well as why the different characterization techniques are required to assess the quality and reliability of the material for electrochemical supercapacitor applications.
机译:随着每个移动的一天,将成为现代科学和技术最重要的方面是为所有科学应用提供足够的能量的手段。随着化石燃料的资源快速排出,始终需要替代方案来满足未来世界的需求。有限的资源也强制创新可以更有效地利用资源的东西。这项工作基于生物量衍生的硬碳的简单合成途径,并探讨使用它作为电化学超级电容器的可能性。廉价,环保且易于合成的碳材料用作电化学能量储存的电极。由Koh活性香蕉茎(KHC)合成四种不同的硬碳,磷酸处理的香蕉茎衍生的碳(PHC),玉米烯烃衍生的硬碳(CHC)和马铃薯淀粉衍生的硬碳(SHC)并作为超级电容器测试。 koh激活的硬碳提供了479.23·f / g特定电容,从其循环伏安图计算。进行详细分析以将通过材料性质获得的结果相关联。总体而言,这项工作在电化学能量 - 存储系统的组件背后的科学方面提供了深入分析,以及为什么需要不同表征技术来评估用于电化学超级电容器应用的材料的质量和可靠性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号