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Ceramic Nanoparticle-Decorated Melt-Electrospun PVDF Nanofiber Membrane with Enhanced Performance as a Lithium-Ion Battery Separator

机译:陶瓷纳米粒子装饰的熔融电纺PVDF纳米纤维膜,具有增强的锂离子电池隔膜性能

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Designing a composite separator that can withstand high temperature, deliver high capacity, and offer fast charge–discharge capability is imperative for developing a high-performance lithium-ion battery. Here, a series of ceramic nanoparticle-coated nanofiber membranes, including Al2O3/poly(vinylidene fluoride) (PVDF), SiO2/PVDF, and Al2O3/SiO2/PVDF, were prepared by melt-electrospinning and magnetron sputtering deposition. Among all of these composite separators, Al2O3/SiO2/PVDF showed several advantages including excellent thermal stability (no dimensional shrinkage at temperature up to 130 °C and an onset degradation temperature of 445 °C) and superb electrolyte compatibility (340% electrolyte uptake). In addition, the β phase of the fibrous PVDF membrane as well as the presence of polar ceramic nanoparticles on the fiber surface can synergistically improve the ion conductivity to 2.055 mS/cm at room temperature, which is more than 8 times higher than that of the commercial polyethylene (PE) separator. Performance of these ceramic nanoparticle-coated separators in a lithium-ion battery demonstrated an improved discharge capacity of 161.5 mAh/g and more than 84.3% capacity retention rate after 100 cycles. The ceramic nanoparticle-coated PVDF separators also maintained 58.4% capacity at a high current density of 8C, which is better than the 49.8% capacity for the commercial PE separator. Therefore, the ceramic nanoparticle-coated PVDF membrane proves to be a promising separator for a high-power and more secure lithium-ion battery.
机译:设计一种能够承受高温,提供高容量并提供快速充放电能力的复合隔膜对于开发高性能锂离子电池至关重要。在此,通过熔融电纺丝和磁控溅射沉积制备了一系列陶瓷纳米颗粒涂覆的纳米纤维膜,包括Al2O3 /聚偏二氟乙烯(PVDF),SiO2 / PVDF和Al2O3 / SiO2 / PVDF。在所有这些复合隔板中,Al2O3 / SiO2 / PVDF表现出以下优势:出色的热稳定性(在高达130°C的温度下无尺寸收缩,起始降解温度为445°C)和极好的电解质相容性(电解质吸收340%) 。此外,纤维状PVDF膜的β相以及纤维表面上存在极性陶瓷纳米粒子可协同将离子电导率在室温下提高至2.055 mS / cm,这是其电导率的8倍以上。商业聚乙烯(PE)隔板。这些陶瓷纳米颗粒涂覆的隔膜在锂离子电池中的性能证明,其放电容量提高了161.5 mAh / g,经过100次循环后,容量保持率超过84.3%。陶瓷纳米粒子涂覆的PVDF隔板在8C的高电流密度下也保持58.4%的容量,这比商用PE隔板的49.8%的容量要好。因此,事实证明,涂覆有陶瓷纳米颗粒的PVDF膜是用于高功率和更安全的锂离子电池的有前途的隔板。

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