首页> 外文期刊>Chemical engineering journal >Effect of OctaphenylPolyhedral oligomeric silsesquioxane on the electrospun Poly-m-phenylene isophthalamid separators for lithium-ion batteries with high safety and excellent electrochemical performance
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Effect of OctaphenylPolyhedral oligomeric silsesquioxane on the electrospun Poly-m-phenylene isophthalamid separators for lithium-ion batteries with high safety and excellent electrochemical performance

机译:辛烯基聚寡聚二烷烃喹甲硅氧烷对高安全性和优异电化学性能锂离子电池电纺 - 聚-M-亚苯基苯甲酰氨胺分离器的影响

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摘要

In this study, a hybrid Poly-m-phenyleneisophthalamide/Octaphenyl-Polyhedral oligomeric silsesquioxane (PMIA/Octaphenyl-POSS) membrane (HPPS) was fabricated by electrospinning technique and its application performance as lithium-ion battery separators was discussed. The organic-inorganic feature of Octaphenyl-POSS (OPS) endowed admirable compatibility of membrane matrix for the HPPS membranes. The nanofiber membranes with OPS nanoparticles were provided with commendable thermal stability, robust mechanical strength (21.79 MPa), high porosity and electrolyte uptake, which laid a good foundation for improving the safety and cycle performance of the cells with the separator. The lithium-ion battery with the HPPS separator displayed a high ionic conductivity of 1.93 x 10~(-3)Scm~(-1) and a stable electrochemical window of 4.98V. More significantly, the HPPS nanofiber membrane based Li/LiCoO2 cell exhibited excellent cycling stability with high first discharge capacity up to 157.9 mAh-g~(-1) and superior capacity retention of 89.04% after 100 cycles. Therefore, the HPPS separator has extraordinary potential to be used in high-performance lithium-ion battery.
机译:在该研究中,通过静电纺丝技术制造了一种杂化聚-M-亚苯基二甲酰胺/辛烷基 - 多面体低聚体蛋白酶蛋白(PMIA /曲向 - POLS)膜(HPP),并讨论了作为锂离子电池分离器的应用性能。递向屈曲(OPS)的有机无机特征(OPS)赋予HPPS膜膜基质的令人钦佩的相容性。具有OPS纳米颗粒的纳米纤维膜具有可值得称赞的热稳定性,鲁棒的机械强度(21.79MPa),高孔隙率和电解质吸收,其奠定了良好的基础,用于提高细胞与分离器的安全性和循环性能。具有HPP分离器的锂离子电池显示为1.93×10〜(-3)SCM〜(-1)的高离子电导率和4.98V的稳定电化学窗口。更重要的是,基于HPP的纳米纤维膜的Li / LiCoO2细胞表现出优异的循环稳定性,高级放电容量高达157.9mah-g〜(-1),100次循环后的优质容量保持89.04%。因此,HPP分离器具有用于高性能锂离子电池的非凡电位。

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