电化学(中英文) ›› 2017, Vol. 23 ›› Issue (5): 507-532. doi: 10.13208/j.electrochem.170348
• 超级电容器近期研究专辑(南京航空航天大学 张校刚教授主编) • 上一篇 下一篇
郎俊伟1,张旭2,王儒涛1,阎兴斌1,2*
收稿日期:
2017-06-13
修回日期:
2017-07-25
出版日期:
2017-10-28
发布日期:
2017-10-28
通讯作者:
阎兴斌
E-mail:xbyan@licp.cas.cn
基金资助:
LANG Jun-wei1, ZHANG Xu2, WANG Ru-tao1, YAN Xing-bin1,2*
Received:
2017-06-13
Revised:
2017-07-25
Published:
2017-10-28
Online:
2017-10-28
Contact:
YAN Xing-bin
E-mail:xbyan@licp.cas.cn
摘要: 超级电容器最大的优点是具有优良的脉冲充放电性能和快速充放电性能,同时具有循环寿命长、工作温度范围宽、安全无污染等特性,但能量密度较低. 本文对超级电容器的工作原理、发展状况、缺陷所在和改进方法进行了简要介绍,以本课题组在高比能超级电容器方面的研究工作为主线,结合近几年的文献报道,重点阐述了超级电容器能量密度的提升策略. 主要围绕以下三个方面开展了工作:1)通过将电极材料尺寸纳米化来提高传统电极材料的比容量或开发其他高比容量的电极材料;2)发展具有高电压窗口的离子液体电解液,或利用不同材料在不同电位区间的电容特性构筑不对称电容器,从而提高超级电容器的电压窗口;3)将超级电容器和锂离子电池进行“内部交叉”构筑兼具高能量密度和高功率密度的锂离子混合电容器. 最后,对超级电容器的发展进行了展望.
中图分类号:
郎俊伟,张旭,王儒涛,阎兴斌. 超级电容器能量密度的提升策略[J]. 电化学(中英文), 2017, 23(5): 507-532.
LANG Jun-wei, ZHANG Xu, WANG Ru-tao, YAN Xing-bin. Strategies to Enhance Energy Density for Supercapacitors[J]. Journal of Electrochemistry, 2017, 23(5): 507-532.
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