Journal of The Electrochemical Society · 2020 · 68 citations · 68 references
Materials ScienceFinite Element MethodElectrical EngineeringMechanical DegradationEngineeringElectric BatteryMechanical EngineeringBattery AdditivesLithium-ion BatteriesMechanical BatteriesLithium-ion BatteryEnergy StorageElectrochemical Energy StorageBatteriesSolid-state BatteryAsslb ArchitecturesElectrochemo-mechanically Induced StressElectrochemistry
The mechanical degradation of all-solid-state Li-ion batteries (ASSLBs) is expected to be more severe than that in traditional Li-ion batteries with liquid electrolytes due to the additional mechanical constraints imposed by the solid electrolyte on the deformation of electrodes. Cracks and fractures could occur both inside the solid electrolyte (SE) and at the SE/electrode interfconce. A coupled electrochemical-mechanical model was developed and solved by the Finite Element Method (FEM) to evaluate the stress development in ASSLBs. Two sources of volume change were considered, namely the expansion/shrinkage of electrodes due to lithium concentration change and the interphase formation at the SE/electrode interface due to the decomposition of SEs. The most plausible solid electrolyte decomposition reactions and their associated volume change were predicted by density functional theory (DFT) calculations. It was found that the stress associated with a volume change due to solid electrolyte decomposition can be much more significant than that of electrode volumetric changes associated with Li insertion/extraction. This model can be used to design 3D ASSLB architectures to minimize their internal stress generation.
68
Commentary: The Materials Project: A materials genome approach to accelerating materials innovation
Anubhav Jain, Shyue Ping Ong, Geoffroy Hautier et al. · APL Materials · 2013 · 11.9K citations · Full text
Review—SEI: Past, Present and Future
E. Peled, Svetlana Menkin · Journal of The Electrochemical Society · 2017 · 1.9K citations · Full text
Yizhou Zhu, Xingfeng He, Yifei Mo · ACS Applied Materials & Interfaces · 2015 · 1.8K citations · Full text
Materials Science, Chemical Engineering, First-principles Calculations +15
Recent advances in all-solid-state rechargeable lithium batteries
Chunwen Sun, Jin Liu, Yudong Gong et al. · Nano Energy · 2017 · 1.6K citations