Key Laboratory of Recycling and Eco-treatment of Waste Biomass of Zhejiang Province, Zhejiang University of Science and Technology, Hangzhou 310023, China.
College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310027, China.
Int J Biol Macromol. 2024 May;268(Pt 2):131854. doi: 10.1016/j.ijbiomac.2024.131854. Epub 2024 Apr 26.
Cellulose-based separators have great application prospects in the field of lithium-ion batteries (LIBs) due to their excellent wettability and thermal stability. However, most current cellulose-based separators come from high-cost nanocellulose and bacterial cellulose. Herein, regenerated cellulose (RC) separators were prepared from dissolving pulp with different degrees of polymerization (DPs) by using the NaOH/urea/thiourea dissolution system as well as a nonsolvent-induced phase separation method. The results showed that the DP of cellulose had a significant influence on the mechanical properties, pore structure, and electrochemical properties of the resultant RC separator. An appropriate increase in the DP could improve the mechanical strength, porosity, and ionic conductivity of the separator. The RC separator with a DP of 599 exhibited the best performance with a porosity of 56.1 %, an average pore size of 305 nm, an electrolyte uptake of 339 %, a tensile strength of 38.3 MPa, and an ionic conductivity of 1.88 mS·cm. The lithium-ion battery prepared with the optimal RC separator had a specific capacity of 156.55 mAh/g for 100 cycles at a current density of 0.5 C and a coulombic efficiency of more than 96 %, which was a clear advantage over the commercially available Celgard2400 and cellulose separators. This work makes contributions to the development of high-performance LIBs separators from cellulose.
基于纤维素的分离器由于其优异的润湿性和热稳定性,在锂离子电池(LIBs)领域具有广阔的应用前景。然而,目前大多数基于纤维素的分离器来自高成本的纳米纤维素和细菌纤维素。在此,通过使用 NaOH/尿素/硫脲溶解体系和非溶剂致相分离法,从不同聚合度(DP)的溶解浆制备再生纤维素(RC)分离器。结果表明,纤维素的 DP 对所得 RC 分离器的机械性能、孔结构和电化学性能有显著影响。适当增加 DP 可以提高分离器的机械强度、孔隙率和离子电导率。DP 为 599 的 RC 分离器表现出最佳性能,具有 56.1%的孔隙率、305nm 的平均孔径、339%的电解质吸收量、38.3MPa 的拉伸强度和 1.88mS·cm 的离子电导率。用最佳 RC 分离器制备的锂离子电池在 0.5C 的电流密度下循环 100 次时具有 156.55mAh/g 的比容量,库仑效率超过 96%,明显优于市售的 Celgard2400 和纤维素分离器。这项工作为开发高性能 LIBs 分离器做出了贡献。