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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Electrode-coated alumina separators for lithium-ion batteries - effect of particle size and distribution of alumina powders
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Electrode-coated alumina separators for lithium-ion batteries - effect of particle size and distribution of alumina powders

机译:用于锂离子电池的电极涂覆的氧化铝分离器 - 颗粒尺寸和氧化铝粉末分布的效果

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Lithium-ion batteries prepared with ceramic, powder-coated electrode separators exhibit improved safety and performance characteristics compared to those with polymeric separators prone to thermal runaway. However, electrode-coated alumina separators are thinner and more flexible than standalone ceramic powder separators. Previous studies demonstrated the success of lithium-ion batteries with an alumina separator prepared by the blade-coating method on metal oxide electrodes. The present work examines the effect of particle size of alpha-alumina powder on slurry processability, coating formation, and the performance of lithium-titanate/lithium half cells with an alumina powder electrode-coated separator. Alumina powders with large particles (> 10 mu m) were unable to form a slurry with the consistency required to fabricate such electrode-coated separators. Alumina powders that formed a consistent slurry were directly coated onto a lithium-titanate electrode, resulting in a good quality, thin electrode-supported separator. However, submicron-sized particles of alpha-alumina could block the electrode surface, affecting performance and stability of the final cell with the separator. Unimodal, micron-sized particles formed low viscosity slurries that both wet and damaged the electrode. An improved cell performance was observed if the coated separator was made of alumina powder with bimodal distribution of submicron and micron-sized particles, yet good results in terms of separator formation and the performance of the resulting cells were achieved only with alumina powder of a specific bimodal distribution. Interaction of the alumina and binder in the separator was studied to understand the need for the specific bimodal distribution of the alumina powder. (C) 2019 Elsevier B.V. All rights reserved.
机译:用陶瓷粉末涂覆电极分离器制备的锂离子电池表现出与易于热失控的聚合物分离器相比的改善的安全性和性能特性。然而,电极涂覆的氧化铝分离器比独立陶瓷粉末分离器更薄,更柔韧。以前的研究表明,锂离子电池的成功与通过在金属氧化物电极上的叶片涂布方法制备的氧化铝分离器的成功。本作者研究了α-氧化铝粉末对浆料加工性,涂层形成和锂 - 钛酸盐/锂半细胞的性能与氧化铝粉末电极涂覆的隔膜的影响。具有大颗粒(>10μm)的氧化铝粉末不能形成浆料,其具有制造这种电极涂覆的隔板所需的一致性。将形成一致浆液的氧化铝粉末直接涂覆到锂钛酸锂电极上,得到良好的质量,薄电极负载的隔膜。然而,亚甲氧化铝的亚微米尺寸的颗粒可以阻断电极表面,影响最终电池与分离器的性能和稳定性。单透明的微观颗粒形成低粘度浆料,湿润并损坏电极。如果涂覆的分离器由氧化铝粉末具有亚微米和微髓粒子的双峰分布,则观察到改善的细胞性能,但在分离器形成方面也是良好的结果,并且仅使用特定的氧化铝粉末实现所得细胞的性能。双峰分布。研究了氧化铝和粘合剂在分离器中的相互作用,以了解对氧化铝粉末的特异性双峰分布的需要。 (c)2019年Elsevier B.V.保留所有权利。

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