Publication | Open Access
Hydrogel Electrolyte with Regulated Water Activity and Hydrogen Bond Network for Ultra‐Stable Zinc Electrode
38
Citations
53
References
2024
Year
EngineeringElectrode-electrolyte InterfaceHydrogen Bond NetworkPolyelectrolyte GelChemistryPva MatrixHydrogelsChemical EngineeringElectrolyzer CellSodium BatteryHydrogel ElectrolyteHybrid MaterialsMaterials ScienceBattery Electrode MaterialsEnergy StorageSolid-state BatteryEnergy MaterialPva ChainsElectrochemistrySolvation StructureElectrochemical Energy StorageUltra‐stable Zinc ElectrodeBatteriesFunctional Materials
Abstract Quasi‐solid‐state zinc‐ion batteries (QZIBs) have attracted wide attention due to their excellent dimensional stability and high safety. However, poor ion conduction capabilities, severe dendrite growth, and rampant side reactions still hinder their commercialization. The regulation of the solvation structure of Zn 2+ is considered to be an effective method to address these issues. Herein, a hydrogel electrolyte with a regulated solvation structure (HE‐RS) is designed via the combination of tetramethyl urea (TMU) additive and polyvinyl alcohol (PVA) matrix. The hydrophilic ─C═O group of TMU exhibits strong affinity with the PVA chains, improving the mechanical strength of the PVA matrix. The ─N(CH 3 ) 2 groups at both ends of TMU exhibit strong hydrophobic characteristics, which leads to local hydrophobicity and decreased water activity. Additionally, abundant oxygen‐containing (electronegative) groups on both PVA and TUM can adsorb Zn 2+ and provide sites for Zn 2+ transference. Benefiting from these merits, Zn 2+ solvation structure and deposition behavior are regulated. Consequently, the Zn||Zn symmetric cell with HE‐RS exhibits a stable cycling life exceeding 2000 h. Moreover, the HE‐RS‐based Zn||NH 4 V 4 O 10 cell exhibits a capacity retention of 96.4% after 1000 cycles at 2 A g −1 .
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