材料科学
膜
热稳定性
分离器(采油)
纤维素
复合数
化学工程
静电纺丝
电解质
聚丙烯
六氟丙烯
复合材料
离子电导率
溶解
再生纤维素
纳米纤维
细菌纤维素
聚合物
化学
电极
生物化学
物理
物理化学
四氟乙烯
工程类
共聚物
热力学
作者
Xingfu Zi,Hongming Wu,Jiling Song,Weidi He,Lu Xia,Jianbing Guo,Sihai Luo,Wei Yan
出处
期刊:Molecules
[Multidisciplinary Digital Publishing Institute]
日期:2023-06-26
卷期号:28 (13): 4998-4998
被引量:11
标识
DOI:10.3390/molecules28134998
摘要
Cellulose membranes have eco-friendly, renewable, and cost-effective features, but they lack satisfactory cycle stability as a sustainable separator for batteries. In this study, a two-step method was employed to prepare a sandwich-like composite membrane of poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP)/cellulose/ PVDF-HFP (PCP). The method involved first dissolving and regenerating a cellulose membrane and then electrospinning PVDF-HFP on its surface. The resulting PCP composite membrane exhibits excellent properties such as high porosity (60.71%), good tensile strength (4.8 MPa), and thermal stability up to 160 °C. It also has exceptional electrolyte uptake properties (710.81 wt.%), low interfacial resistance (241.39 Ω), and high ionic conductivity (0.73 mS/cm) compared to commercial polypropylene (PP) separators (1121.4 Ω and 0.26 mS/cm). Additionally, the rate capability (163.2 mAh/g) and cycling performance (98.11% after 100 cycles at 0.5 C) of the PCP composite membrane are superior to those of PP separators. These results demonstrate that the PCP composite membrane has potential as a promising separator for high-powered, secure lithium-ion batteries.
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