纺织学报 ›› 2023, Vol. 44 ›› Issue (06): 41-49.doi: 10.13475/j.fzxb.20220309901
王赫1,2, 王洪杰1,3(), 赵紫奕1, 张晓婉1, 孙冉1, 阮芳涛1
WANG He1,2, WANG Hongjie1,3(), ZHAO Ziyi1, ZHANG Xiaowan1, SUN Ran1, RUAN Fangtao1
摘要:
为开发设计具有高电化学性能的碳纳米纤维电极,采用静电纺丝技术、戊二醛交联和高温炭化制备聚丙烯腈/高直链淀粉(PAN/HAS)基碳纳米纤维,并对其形貌、元素组成、石墨化晶体结构和比表面积进行了研究。结果表明:经过戊二醛交联后的碳纳米纤维呈现连通结构,并具有优异的石墨晶体和多级孔结构、较大的比表面积(647 m2/g)和较高的总孔体积(0.60 cm3/g);将其制备成电极,在三电极体系下,当电流密度为1 A/g时比电容为255 F/g,当电流密度为20 A/g时比电容保持率高达71%;经过10 000次充放电循环后,电极比电容的保持率高达99.8%,显示出优异的循环耐久性。
中图分类号:
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