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Nanoparticle-coated separators for lithium-ion batteries with advanced electrochemical performance

机译:具有先进电化学性能的用于锂离子电池的纳米涂层隔膜

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摘要

We report a simple, scalable approach to improve the interfacial characteristics and, thereby, the performance of commonly used polyolefin based battery separators. The nanoparticle-coated separators are synthesized by first plasma treating the membrane in oxygen to create surface anchoring groups followed by immersion into a dispersion of positively charged SiO 2 nanoparticles. The process leads to nanoparticles electrostatically adsorbed not only onto the exterior of the surface but also inside the pores of the membrane. The thickness and depth of the coatings can be fine-tuned by controlling the ζ-potential of the nanoparticles. The membranes show improved wetting to common battery electrolytes such as propylene carbonate. Cells based on the nanoparticle-coated membranes are operable even in a simple mixture of EC/PC. In contrast, an identical cell based on the pristine, untreated membrane fails to be charged even after addition of a surfactant to improve electrolyte wetting. When evaluated in a Li-ion cell using an EC/PC/DEC/VC electrolyte mixture, the nanoparticle-coated separator retains 92% of its charge capacity after 100 cycles compared to 80 and 77% for the plasma only treated and pristine membrane, respectively. © the Owner Societies 2011.
机译:我们报告了一种简单,可扩展的方法来改善界面特性,从而改善常用的基于聚烯烃的电池隔膜的性能。通过首先在氧气中对膜进行等离子体处理以产生表面锚定基团,然后将其浸入带正电的SiO 2纳米颗粒的分散液中,来合成涂覆有纳米颗粒的隔板。该过程导致纳米颗粒不仅静电吸附到表面的外部,而且静电吸附到膜的孔内部。涂层的厚度和深度可以通过控制纳米粒子的ζ电位进行微调。膜对普通电池电解质(如碳酸亚丙酯)的润湿性得到改善。即使在简单的EC / PC混合物中,基于纳米颗粒涂层膜的细胞也可操作。相反,即使在添加表面活性剂以改善电解质润湿性之后,基于未经处理的原始膜的相同电池也无法充电。当在使用EC / PC / DEC / VC电解质混合物的锂离子电池中进行评估时,涂有纳米颗粒的隔膜在100次循环后仍保留其92%的充电容量,而仅用等离子体处理的原始膜和80%的隔膜则保持了77%的电荷容量,分别。 ©船东协会2011。

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