Advanced Functional Materials · 2024 · 54 citations · 42 references
EngineeringChemistryAbstract Lithium MetalChemical EngineeringUltrathin Composite SeparatorMaterials ScienceBattery Electrode MaterialsCommercial SeparatorsElectrochemical Power SourceAdvanced Electrode MaterialLithium-ion BatteryLithium-ion BatteriesEnergy StorageSolid-state BatteryEnergy MaterialCommercial Polyethylene SeparatorNanomaterialsLi-ion Battery MaterialsElectrochemical Energy StorageBatteriesLithiated Cof Nanosheet
Abstract Lithium metal is considered as the ultimate anode material for high‐energy‐density rechargeable batteries. However, lithium metal batteries (LMBs) with commercial separators still face some challenges such as low cycling efficiency and uncontrollable Li dendrite growth, which seriously hampers the commercialization of LMBs. In this study, a novel kind of ultrathin (6.2 µm) multifunctional composite separator (TpPa‐SO 3 Li@PE) is designed and prepared via coating lithiated covalent organic framework nanosheet (TpPa‐SO 3 Li) on the surface of commercial polyethylene separator (PE). TpPa‐SO 3 Li@PE integrates features of the nanochannel arrays and abundant immobilized anionic sites, leading to efficient Li + conduction and homogeneous Li + flow. As a result, TpPa‐SO 3 Li@PE exhibits excellent Li + conductivity (0.96 mS cm −1 ) and Li + transference number (0.83) at room temperature, and Li/Li symmetric cell using TpPa‐SO 3 Li@PE separator possesses highly stable Li plating/striping (over 2600 h) at high current density (5 mA cm −2 ). Moreover, Li/LiFePO 4 full cells with TpPa‐SO 3 Li@PE separator show excellent cycling performance (high capacity retention of 94.9% after 300 cycles at 1 C) and superior rate performance (high specific capacity of 113.6 mAh g −1 at 5 C).
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Self-assembled monolayers direct a LiF-rich interphase toward long-life lithium metal batteries
Yujing Liu, Xinyong Tao, Yao Wang et al. · Science · 2022 · 854 citations · Full text