使用容量贡献电解质的高能量、高倍率锂//CFx 电池建模

Caitlin D. Parke, Kailot C Harris, Xiyue Zhang, Minsung Baek, Chunsheng Wang, P. Albertus
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摘要

在商用电池中,锂//CFx 电池的比能量最高,但新的应用要求更高的速率(如 C/3)和脉冲(如以 5C/3 速率持续 1 分钟),这推动了对更高能量和功率密度的追求。容量贡献电解质(CCE)可以在比 CFx 反应电位稍低的情况下提供额外容量,从而提高电池比能量。在这项工作中,我们提出了一个原生锂/CFx 电池的 0D 瞬态模型,其 CCE 由盐和溶剂组成,可提供容量,重点是 C/3 速率和脉动。除了两个 CCE 反应之外,我们模型的新颖之处还包括可变的阴极厚度和孔隙率(据测量,CFx 阴极厚度在 25°C 时扩大了 >40%),以及对电池电势有贡献的所有物种和术语的瞬态演变的详细介绍(包括盐和溶剂反应如何影响离子极化和固相产物电阻的增长)。我们的工作量化了从 CCE 反应中获得比能量增强所需的热力学、动力学和传输过程与特性之间的微妙平衡,以及阴极厚度和孔隙率的变化如何影响导致放电结束的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling a High-Energy, High-Rate Li//CFx Battery with a Capacity-Contributing Electrolyte
Li//CFx cells have achieved the highest specific energy of commercial batteries, but new applications requiring higher rates (e.g., C/3) and pulsing (e.g., at 5C/3 rate for 1 min) drive the push for higher energy and power densities. A capacity-contributing electrolyte (CCE) can provide additional capacity at a slightly lower potential than the CFx reaction, increasing cell specific energy. In this work we present a 0D transient model of a primary Li/CFx cell with a CCE composed of both a salt and solvent that provide capacity with a focus on a C/3 rate and pulsing. Novel aspects of our model, in addition to the two CCE reactions, include a variable cathode thickness and porosity (CFx cathode thickness has been measured to expand by >40% at 25°C) and a detailed presentation of the transient evolution of all species and terms that contribute to cell potential (including how salt and solvent reactions affect ionic polarization and the growth of solid-phase product resistances). Our work quantifies the delicate balance of thermodynamic, kinetic, and transport processes and properties that is needed to obtain specific energy enhancements from CCE reactions, and how changing cathode thickness and porosity affect the mechanisms that cause the end of discharge.
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