首页> 外文期刊>International Journal of Electrochemical Science >Study of Mass Transfer Behaviour in a PDMS-FTBA Mixed Oxygen Selective Membrane for Li-air Batteries
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Study of Mass Transfer Behaviour in a PDMS-FTBA Mixed Oxygen Selective Membrane for Li-air Batteries

机译:Li-Air电池PDMS-FTBA混合氧选择性膜中的传质行为研究

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Because they have 10 times the energy density of lithium-ion batteries, Li-air batteries are very promising for application in electric vehicles. In addition to the materials used in the batteries, oxygen filtering and internal oxygen transfer resistance are also key issues that need to be resolved to ensure the application of Li-air batteries. First, in this paper, the molecular dynamics (MD) method and the Monte Carlo (GCMC) method are employed to study the dissolution and diffusion behaviour of oxygen molecules and water molecules in the commonly-used oxygen selective membrane with polydimethylsiloxane (PDMS). To further improve the dissolution and diffusion performance and analyse the mechanism of internal oxygen transfer, a new type of oxygen selective membrane is prepared by mixing polydimethylsiloxane (PDMS) and perfluorotributylamine (FTBA). The results show that in addition to effectively limiting the diffusion behaviour of water molecules, the commonly-used PDMS membrane also reduces the diffusion ability of oxygen molecules. However, the mixed oxygen membrane formed by mixing PDMS and FTBA at a mass ratio of 1:3 improves the diffusion performance of oxygen molecules while limiting the diffusion ability of water molecules, which can enhance the battery performance while filtering oxygen. This study provides technical support for the transition from Li-O2 batteries to Li-air batteries.
机译:因为它们具有锂离子电池的能量密度的10倍,因此Li-Air电池非常有前途适用于电动车辆。除了电池中使用的材料外,氧气过滤和内部氧气转移性也是需要解决的关键问题,以确保Li-Air电池的应用。首先,在本文中,采用分子动力学(MD)方法和蒙特卡罗(GCMC)方法研究氧分子和水分子中的氧分子和水分子用聚二甲基硅氧烷(PDMS)的溶解和扩散行为。为了进一步改善溶解和扩散性能并分析内氧转移的机理,通过混合聚二甲基硅氧烷(PDMS)和全氟丁基胺(FTBA)制备一种新型的氧选择性膜。结果表明,除了有效地限制水分子的扩散行为之外,常用的PDMS膜还降低了氧分子的扩散能力。然而,通过混合PDMS和FTBA以1:3的质量比形成的混合氧膜改善了氧分子的扩散性能,同时限制了水分子的扩散能力,这可以在过滤氧气时增强电池性能。本研究为从Li-O2电池到Li-Air电池的过渡提供了技术支持。

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