材料科学
水溶液
阴极
电解质
化学工程
储能
溶剂化
过渡金属
锂(药物)
多硫化物
磷酸铁锂
电化学
电池(电)
氢气储存
动力学
枝晶(数学)
磷酸盐
纳米颗粒
无机化学
纳米技术
氢
二甘醇
微乳液
金属
阳极
电镀
沉积(地质)
金属锂
钾离子电池
作者
Enhui Zhang,Yong-Guang Zhang,Haiyang Zhang,Z W Wu,Hanling Guo,S Y Wang,Xiang Lin,Fengxian Gao,Min Gong,Liang Zhang,Dongrui Wang
摘要
ABSTRACT Aqueous Zn/Li hybrid‐ion batteries are promising for grid‐scale energy storage owing to intrinsic safety and cost‐effectiveness, yet practical application is plagued by severe interfacial issues such as Zn dendrite growth, hydrogen evolution and transition metal dissolution, particularly under high cathode loading and lean electrolyte conditions. Herein, we propose a diethylene glycol (DEG)‐modified Li 2 SO 4– ZnSO 4 electrolyte to stabilize Zn 2+ /Li + dual‐cation chemistry. As a molecular modulator, DEG reorganizes hydrogen‐bonding networks and reconstructs cation solvation sheaths, efficiently suppressing parasitic water activity. At the anode, DEG preferentially adsorbs to build a dynamic shielding layer, inducing uniform Zn (002) deposition and alleviating corrosion. Meanwhile, it stabilizes the lithium iron phosphate (LiFePO 4 , LFP) cathode by accelerating Li + transport kinetics and restraining Fe dissolution. The assembled Zn||LFP full cell with 15 mg cm −2 cathode loading and an N/P ratio of 2.37 delivers 2.64 mAh cm −2 and retains stable cycling over 1700 times at 5 mA cm −2 , also achieving ultralow self‐discharge and excellent sub‐zero tolerance. This antisolvent engineering strategy offers a scalable route toward high‐energy‐density and commercially viable aqueous hybrid‐ion batteries.
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