Faculty of Science and Engineering, Swansea University, Bay Campus, Fabian Way, Crymlyn Burrows, Skewen, Swansea, SA1 8EN, United Kingdom.
Department of Chemistry, Interdisciplinary Division for Renewable Energy and Advanced Materials (iDREAM), NIT Srinagar, Srinagar, 190006, India.
Chemphyschem. 2022 Mar 4;23(5):e202100860. doi: 10.1002/cphc.202100860. Epub 2022 Feb 1.
Before the viability of a cell formulation can be assessed for implementation in commercial sodium ion batteries, processes applied in cell production should be validated and optimized. This review summarizes the steps performed in constructing sodium ion (Na-ion) cells at research scale, highlighting parameters and techniques that are likely to impact measured cycling performance. Consistent process-structure-performance links have been established for typical lithium-ion (Li-ion) cells, which can guide hypotheses to test in Na-ion cells. Liquid electrolyte viscosity, sequence of mixing electrode slurries, rate of drying electrodes and cycling characteristics of formation were found critical to the reported capacity of laboratory cells. Based on the observed importance of processing to battery performance outcomes, the current focus on novel materials in Na-ion research should be balanced with deeper investigation into mechanistic changes of cell components during and after production, to better inform future designs of these promising batteries.
在评估细胞配方在商业钠离子电池中的可行性之前,应验证和优化细胞生产中应用的工艺。本综述总结了在研究规模构建钠离子(Na-ion)电池所进行的步骤,重点介绍了可能影响测量循环性能的参数和技术。已经为典型的锂离子(Li-ion)电池建立了一致的工艺-结构-性能关系,这可以为 Na-ion 电池中的假设测试提供指导。发现液态电解质的粘度、电极浆料混合的顺序、电极干燥的速度以及形成的循环特性对实验室电池的报告容量至关重要。基于观察到的处理对电池性能结果的重要性,当前对钠离子研究中新型材料的关注应与对生产过程中和生产后电池组件的机制变化的更深入研究相平衡,以便更好地为这些有前途的电池的未来设计提供信息。