Journal of The Electrochemical Society · 2023 · 47 citations · 110 references
EngineeringChemistryChemical EngineeringCam CompositionElectrode Reaction MechanismMaterials ScienceLimo 2Electrochemical Power SourceSurface ElectrochemistryLithium-ion BatteryEnergy StorageUpper Cutoff PotentialCatalysisOxygen ReleaseSolid-state BatteryElectrochemical ProcessElectrochemistryFundamental ElectrochemistryHigh StateElectrochemical Energy StorageBatteriesStructural Stability Limit
The composition of layered transition metal oxides (LiMO 2 , M = Ni, Co, Mn) as cathode active materials (CAMs) is currently trending towards higher nickel contents, which can provide more capacity and energy. The origin of this performance improvement is often ascribed to the lower potential of nickel-rich CAMs, suppressing detrimental electrochemical electrolyte oxidation. In this study, it is shown that the stability limit of LiMO 2 -based CAMs is not determined by the stability window of typical electrolytes in terms of potential but by the CAM composition, governing the structural stability at high degrees of delithiation. The latter is investigated for five CAMs with distinct composition (LCO, NCM111, NCM622, NCM851005, and LNO) as a function of upper cutoff potential and thus state of charge (SOC). Short-term cycling experiments with an increasing upper cutoff potential as well as extended cycling to selected SOCs reveal stability limits between 66 and 86 %SOC depending on the CAM composition. On-line electrochemical mass spectrometry (OEMS) does not only allow to exclude any impact of electrochemical electrolyte oxidation on the determined stability window of the CAMs but also illuminates the concurrence of capacity fade and lattice oxygen release, with the latter being the origin of the CAM degradation.
110
Li-ion battery materials: present and future
Naoki Nitta, Feixiang Wu, Jung Tae Lee et al. · Materials Today · 2014 · 7K citations · Full text
Hyung‐Joo Noh, Sungjune Youn, Chong Seung Yoon et al. · Journal of Power Sources · 2013 · 2.2K citations
Materials Science, Engineering, Li-ion Battery Materials +11