论文标题
固态电池的电化机械建模
Electro-Chemo-Mechanical Modeling of Solid-State Batteries
论文作者
论文摘要
由于其高度的安全性和功率密度,固态电池(SSB)最近被认为是传统锂离子电池的有前途替代品。 SSB的工程需要对其物理学和电化学进行全面的建模,重点是界面过程,包括电化学稳定性和机械应力。在本文中,选择连续模拟作为研究此类属性的建模框架。构建了一个全面的连续模型,用于模拟SSB的电化学机械(ECM)响应,该SSB解析了带电物种的大量运输及其界面传递动力学。它还研究了界面上空间电荷层(SCL)的形成以及界面应力的发展。结果表明,SCL和电荷转移动力学是交织在一起的。 SCL的出现和反应物的耗竭会增加电荷转移过电势。我们还研究了界面的电化学和力学之间的耦合,其结果表明,源自接口的强电场产生了明显的应力。因此,我们强调了在建模SSB时考虑SCLS中的ECM耦合的必要性。
Solid-state batteries (SSBs) have recently been proposed as promising alternatives to conventional Li-ion batteries because of their high level of safety and power density. The engineering of SSBs requires comprehensive modeling of their physics and electrochemistry with an emphasis on the interfacial processes, including electrochemical stability and mechanical stresses. In this article, continuum-scale simulations are chosen as the modeling framework to study such properties. A comprehensive continuum model is constructed for the simulation of the electro-chemo-mechanical (ECM) response of an SSB that resolves the bulk transportation of charged species and their interfacial transfer kinetics. It also studies the formation of space charge layers (SCLs) at interfaces and the development of interfacial stresses. The results suggest that the SCLs and the charge transfer kinetics are intertwined. The emergence of the SCLs and the depletion of reactants increases the charge transfer overpotential. We have also studied the coupling between electrochemistry and mechanics at interfaces, the results of which indicate that the strong electric fields originating at interfaces yield significant stresses. We, thereby, highlight the necessity of considering the ECM coupling in the SCLs when modeling an SSB.