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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Preventing lithium dendrite-related electrical shorting in rechargeable batteries by coating separator with a Li-killing additive
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Preventing lithium dendrite-related electrical shorting in rechargeable batteries by coating separator with a Li-killing additive

机译:通过用Li杀伤添加剂涂覆分离器来防止锂枝晶与锂电片相关电池短路

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摘要

Dendritic electrodeposition is an intrinsic feature of Li metal, and Li dendrite-related electrical shorting is a major cause of thermal runaway in Li metal batteries. In order to prevent such electrical shorting, a Li-killing layer consisting of TiO2 nanoparticles embedded in a porous Kynar polymer matrix is coated onto one side of a conventional Celgard separator and faced to the cathode. After filling with liquid electrolyte, the Kynar polymer swells to a gel while TiO2 serves as a Li-killer by reacting with the Li dendrites that penetrate through the separator. Additionally, the Li-killing layer increases the thermal dimensional stability of the separator, and the wettability, uptake and uphold of the liquid electrolyte. It is shown that a Li/Cu cell with the Li-killing layer does not undergo electrical shorting even if the Li metal is entirely plated onto the counter electrode, whereas an identical cell using a pristine separator rapidly experiences shorting. Moreover, the Li-killing layer increases the rate capability and capacity retention of a Li/LiNi0.80Mn0.10Co0.10O2 cell. Impedance analysis reveals that such improvements are attributed to increased electrolyte uptake and uphold, which consequently reduces the solid electrolyte interphase resistance and charger-transfer resistance.
机译:树突式电沉积是Li Metal的固有特征,Li Dendrite相关电气短路是Li金属电池中热失控的主要原因。为了防止这种电气短路,将由嵌入多孔矛盾聚合物基质中的TiO2纳米颗粒组成的Li杀伤层涂覆到常规Celgard分离器的一侧并面向阴极。在用液体电解质填充后,通过与穿过隔膜的Li树枝状物反应,当TiO2用作Li杀剂时,刺激聚合物膨胀至凝胶。另外,锂杀伤层增加了分离器的热尺寸稳定性,以及液体电解质的润湿性,吸收和升高。结果表明,即使Li金属完全镀到对电极上,也不会发生锂灭鼠层的Li / Cu细胞不会发生电气短路,而使用原始分离器的相同细胞快速经历短路。此外,锂杀伤层增加了Li / LiNi0.80mn0.10Co0.10O2细胞的速率能力和容量保持。阻抗分析表明,这种改进归因于增加的电解质吸收和坚固,从而降低了固体电解质差异性抗性和充电器转印电阻。

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