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Effect of SiO2 Nanoparticles on the Performance of PVdF-HFP/Ionic Liquid Separator for Lithium-Ion Batteries

机译:SiO2纳米颗粒对PVdF-HFP /离子液体隔板锂离子电池性能的影响

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摘要

Safety concerns related to the use of potentially explosive, liquid organic electrolytes in commercial high-power lithium-ion batteries are constantly rising. One promising alternative is to use thermally stable ionic liquids (ILs) as conductive media, which are however, limited by low ionic conductivity at room temperature. This can be improved by adding fillers, such as silica or alumina nanoparticles (NPs), in the polymer matrix that hosts the IL. To maximize the effect of such NPs, they have to be uniformly dispersed in the matrix while keeping their size as small as possible. In this work, starting from a water dispersion of silica NPs, we present a novel method to incorporate silica NPs at the nanoscale level (<200 nm) into PVdF-HFP polymer clusters, which are then blended with the IL solution and hot-pressed to form separators suitable for battery applications. The effect of different amounts of silica in the polymer matrix on the ionic conductivity and cyclability of the separator is investigated. A membrane containing 10 wt.% of silica (with respect to the polymer) was shown to maximize the performance of the separator, with a room temperature ionic conductivity of of 1.22 mS cm1. The assembled half-coin cell with LiFePO4 and Li as the cathode and the anode exhibited a capacity retention of more than 80% at a current density of 2C and 60 C.
机译:与在商业大功率锂离子电池中使用潜在爆炸性液态有机电解质有关的安全隐患在不断增加。一种有前途的替代方法是使用热稳定的离子液体(IL)作为导电介质,但是由于室温下离子电导率低而受到限制。可以通过在承载IL的聚合物基质中添加填充剂(例如二氧化硅或氧化铝纳米颗粒(NPs))来改善这一点。为了最大程度地发挥此类NP的作用,它们必须均匀分散在基质中,同时保持其尺寸尽可能小。在这项工作中,我们从二氧化硅NP的水分散体开始,提出了一种将纳米级(<200 nm)的二氧化硅NP掺入PVdF-HFP聚合物簇中的新方法,然后将其与IL溶液混合并热压形成适合电池应用的隔板。研究了聚合物基质中二氧化硅含量的不同对隔膜离子导电性和循环性的影响。含有10wt。%的二氧化硅(相对于聚合物)的膜显示出使隔板的性能最大化,室温的离子电导率为1.22mS·cm 2。 w3.org/1998/Math/MathML“ id =” mm1“溢出=” scroll“> 1 < / mn> 。带有LiFePO 4 ,Li作为正极和负极,在2C和60的电流密度下,容量保持率超过80% C。

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