纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 43-52.doi: 10.13475/j.fzxb.20250603001
孙刚1, 朱可欣2,3, 陈玉1, 常迎迎1, 杨俊彦2,3, 刘航4, 夏鑫2,3(
)
SUN Gang1, ZHU Kexin2,3, CHEN Yu1, CHANG Yingying1, YANG Junyan2,3, LIU Hang4, XIA Xin2,3(
)
摘要:
为解决高负载增塑剂改性聚氧化乙烯(PEO)基固态电解质时,普遍存在的力学性能与离子传输性能难以协同兼顾的问题,通过对静电纺丝法制备的纤维状结构电解质与溶液浇筑法制备的均质结构电解质进行对比,探究不同结构对固态电解质力学性能和电化学性能的影响,明确纤维状结构在高负载丁二腈(质量分数为27%)条件下对电解质力学性能与离子传输行为的调控机制。进一步将纤维状固态电解质与磷酸铁锂(LFP)纱线正极匹配,构建皮芯结构固态锂离子纱线电极体系,并探究其电化学性能。结果表明:纤维状PEO基固态电解质的断裂强度与断裂伸长率分别达到浇筑膜的4.2倍和2.2倍,其活化能由浇筑膜的0.36 eV 降至0.33 eV;选取纤维状PEO基固态电解质组装的锂对称电池,可在30 ℃下稳定运行超1 500 h。特别是,所制备的皮芯结构LFP全固态纱线电极在30 ℃,0.2 C条件下,首圈放电比容量为124.3 mA·h/g,首圈库仑效率为96.88%,经过100次循环后放电比容量为124 mA·h/g,容量保持率达到99.7%。
中图分类号:
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