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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Thermal Conductivity Changes Due to Degradation of Cathode Film Subjected to Charge-Discharge Cycles in a Li Ion Battery
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Thermal Conductivity Changes Due to Degradation of Cathode Film Subjected to Charge-Discharge Cycles in a Li Ion Battery

机译:由于在Li离子电池中经受充电放电循环的阴极膜的降解导致的导热率变化

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摘要

A battery device with graphene platelets as anode, lithium nickel manganese oxide as cathode, and solid-state electrolyte consisting of layers of lithium phosphorous oxynitride and lithium lanthanum titanate is assembled on the stainless steel substrate. The battery in a polymer enclosure is subjected to several electrical tests consisting of charge and discharge cycles at different current and voltage levels. Thermal conductivity of the cathode layer is determined at the end of charge-discharge cycles using transient thermoreflectance. The microstructure and composition of the cathode layer and the interface between the cathode, the anode, and the electrolyte are characterized using scanning electron microscopy and elemental mapping. The decrease in the thermal conductivity of the same cathode observed after each set of electrical test cycles is correlated with the volume changes and formation of low ionic and thermal conductivity lithium oxide and lithium oxychloride at the interface and along porous regions. The interface between the metal current collector and the cathode is also found to be responsible for the increase in thermal resistance. The results indicate that changes in the thermal conductivity of the electrodes provide a measure of the resistance to heat transfer and degradation of ionic transport in the cathode accompanying the charge-discharge cycles in the batteries.
机译:具有石墨烯血小板作为阳极,锂镍锰氧化物作为阴极的电池装置,以及由磷锂氧氮化锂层和钛酸锂层组成的固态电解质在不锈钢基板上组装。聚合物外壳中的电池经受不同电流和电压水平的电荷和放电循环组成的几个电气测试。使用瞬态热反射在充电 - 放电循环结束时确定阴极层的导热率。使用扫描电子显微镜和元素映射,表征阴极层的微观结构和界面和阴极,阳极和电解质之间的界面。在每组电试次循环之后观察到相同阴极的导热率的降低与界面处的低离子和导热锂和氯氧化锂的体积变化和形成。还发现金属集电体和阴极之间的界面负责导致热阻的增加。结果表明,电极的导热率的变化提供了在电池中的电荷放电循环的阴极中的热传递和离子输送的离子输送的耐热性的测量。

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