论文标题
通往高脚电池电极的途径
A Route to High-Toughness Battery Electrodes
论文作者
论文摘要
对将能源存储功能与增强的机械性能相结合的材料的兴趣越来越大,范围从弯曲的灵活性到可伸缩性到结构特性。在锂离子电池的情况下,这些机械功能可以使它们能够在新兴技术(例如可穿戴,自由形式电子设备,最终为结构元素)中进行集成,例如在运输应用中。这项工作提出了一种生产具有电化学和机械性能的非凡组合的柔性LifePo4 LFP电极的方法。与典型的金属电流收集器相对于参考电极,这种电极表现出异常高的特异性韧性,并结合了较高的速率能力和能量密度。这些特性是由于活性材料颗粒与高表面积碳纳米管纤维织物的强粘附的结果,该纤维纤维织物被用作轻巧,坚固且高度指导的电流收集器。这种强烈的依从性可最大程度地减少电阻,减轻界面故障,并在无机阶段内粘性失败后通过异质菌株增加延展性。结果,这些电极在断裂前可以承受大变形,即使在断裂后,它们也保留了出色的电化学性能,大约是未伸展的Al支持的LFP电极和等效载荷的两倍。
There is increasing interest in materials that combine energy-storing functions with augmented mechanical properties, ranging from flexibility in bending to stretchability to structural properties. In the case of lithium-ion batteries, these mechanical functions could enable their integration in emerging technologies such as wearable, free-form electronics and ultimately as structural elements, for example, in transport applications. This work presents a method to produce flexible LiFePO4 LFP electrodes with an extraordinary combination of electrochemical and mechanical performance. Such electrodes exhibit an exceptionally high specific toughness, combined with superior rate capability and energy density, with respect to reference electrodes with typical metallic current collectors. These properties are a result of the strong adhesion of the active material particles to the high surface area carbon nanotube fiber fabric, used as a lightweight, tough, and highly conducting current collector. This strong adherence minimizes electrical resistance, mitigates interfacial failure, and increases ductility through heterogeneous strain after cohesive failure of the inorganic phase. As a result, these electrodes can withstand large deformations before fracture, and, even after fracture, they retain excellent electrochemical performance, approximately double that of unstretched, Al-supported LFP electrodes with equivalent loading.