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首页> 外文期刊>RSC Advances >Enhanced ionic conductivity in halloysite nanotube-poly(vinylidene fluoride) electrolytes for solid-state lithium-ion batteries
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Enhanced ionic conductivity in halloysite nanotube-poly(vinylidene fluoride) electrolytes for solid-state lithium-ion batteries

机译:固态锂离子电池用埃洛石纳米管-聚偏二氟乙烯电解质中增强的离子电导率

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摘要

Solid composite electrolytes have gained increased attention, thanks to the improved safety, the prolonged service life, and the effective suppression on the lithium dendrites. However, a low ionic conductivity (<10 ~(?5) S cm ~(?1) ) of solid composite electrolytes at room temperature needs to be greatly enhanced. In this work, we employ natural halloysite nanotubes (HNTs) and poly(vinylidene fluoride) (PVDF) to fabricate composite polymer electrolytes (CPEs). CPE-5 (HNTs 5 wt%) shows an ionic conductivity of ~3.5 × 10 ~(?4) S cm ~(?1) , which is ~10 times higher than the CPE-0 (without the addition of HNTs) at 30 °C. The greatly increased ionic conductivity is attributed to the negatively-charged outer surface and a high specific surface area of HNTs, which facilitates the migration of Li ~(+) in PVDF. To make a further illustration, a solid-state lithium-ion battery with CPE-5 electrolyte, LiMn _(2) O _(4) cathode and Li metal anode was fabricated. An initial discharge capacity of ~71.9 mA h g ~(?1) at 30 °C in 1C is obtained, and after 250 cycles, the capacity of 73.5 mA h g ~(?1) is still maintained. This study suggests that a composite polymer electrolyte with high conductivity can be realized by introducing natural HNTs, and can be potentially applied in solid-state lithium-ion batteries.
机译:由于提高了安全性,延长了使用寿命并有效抑制了锂枝晶,固体复合电解质已引起越来越多的关注。然而,需要大大提高室温下的固体复合电解质的低离子电导率(<10〜(Δ5)Scm〜(Δ1))。在这项工作中,我们采用天然埃洛石纳米管(HNT)和聚偏二氟乙烯(PVDF)来制造复合聚合物电解质(CPE)。 CPE-5(HNTs 5 wt%)的离子电导率为〜3.5×10〜(?4)S cm〜(?1),是CPE-0(不添加HNTs)时的〜10倍。 30°C。离子电导率的大大提高归因于HNT的带负电的外表面和高比表面积,这有助于Li〜(+)在PVDF中的迁移。为了进一步说明,制造了具有CPE-5电解质,LiMn _(2)O _(4)阴极和Li金属阳极的固态锂离子电池。在30°C和1C下获得的初始放电容量为〜71.9 mA h g〜(?1),经过250次循环后,仍保持了73.5 mA h g〜(?1)的容量。这项研究表明,可以通过引入天然的HNTs来实现具有高导电率的复合聚合物电解质,并且可以潜在地应用于固态锂离子电池中。

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