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Theoretical optimization of electrode design parameters of Si based anodes for lithium-ion batteries

机译:锂离子电池硅基负极电极设计参数的理论优化

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Silicon is considered one of the most promising anode materials for next-generation lithium-ion batteries. However, dramatic volume expansion during the lithiation of silicon complicates its practical implementation. Literature reports nanostructured electrodes, which are capable to accommodate the volume expansion, reducing associated swelling, degradation and capacity fading. However, several phenomena associated with the volume expansion, such as the reduction of the electrode's porosity, are inherent to the system and must be carefully considered for targeted engineering of high-energy lithium-ion batteries. Herein, we determine design criteria of silicon based electrodes, taking into account the volume expansion during lithiation. A "deformation threshold" is defined signifying the minimum value of the initial porosity that must be adjusted to avoid plastic deformation and dramatic reduction of the electrode's porosity during charging. In addition, a "C-rate threshold" is defined, guaranteeing diffusion limited currents not falling below a desired discharge rate. The impact of these theoretical limitations on the electrochemical performance of silicon-based electrodes is analyzed from an engineering point of view. The derived relations are used to optimize the electrode design parameters regarding maximum gravimetric and volumetric capacity.
机译:硅被认为是下一代锂离子电池最有希望的负极材料之一。然而,硅的锂化过程中体积的急剧膨胀使其实际实施变得复杂。文献报道了纳米结构的电极,其能够适应体积膨胀,减少相关的溶胀,降解和容量衰减。但是,与体积膨胀相关的几种现象,例如电极孔隙率的降低,是系统固有的,必须针对高能锂离子电池的目标工程进行认真考虑。在此,考虑锂化过程中的体积膨胀,确定硅基电极的设计标准。定义了“变形阈值”,表示必须调整初始孔隙率的最小值,以避免在充电过程中塑性变形和电极孔隙率的急剧降低。另外,定义了“ C速率阈值”,以确保扩散限制电流不低于期望的放电速率。从工程的角度分析了这些理论限制对硅基电极的电化学性能的影响。导出的关系用于优化有关最大重量和体积容量的电极设计参数。

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