Abstract
Low-temperature operation of aqueous zinc batteries is fundamentally limited by electrolyte freezing and sluggish interfacial kinetics, originating from strong ion-solvent interactions. Here, we report a steric-regulated weakly solvating hydrogel electrolyte enabled by network-anchored fluorinated Zr-based metal–organic polyhedra (MOPs). The rigid, hydrophobic nanocage architecture simultaneously anchors Zn2+ through coordination and sterically excludes active water molecules, thereby diluting the local electrostatic field, lowering the desolvation barrier, and disrupting extended hydrogen-bond networks to suppress ice crystallization. As a result, Zn||Zn symmetric cells cycle stably for over 3700 h at −40°C, while Zn||MnHCF full cells deliver 65.8 mAh g−1 at −20°C with 82% capacity retention after 350 cycles, and still maintain 24.6 mAh g−1 at −40°C. Spectroscopic, electrochemical, and theoretical analyses reveal that Zr-based MOPs reconstruct the Zn2+ solvation shell into a spatially expanded, weakly bound structure that accelerates charge transfer and suppresses parasitic reactions. This work establishes a steric-architecture design paradigm for engineering weakly solvating electrolytes, offering a robust strategy for aqueous batteries operating under extreme low-temperature conditions.
| Original language | English |
|---|---|
| Journal | Angewandte Chemie - International Edition |
| DOIs | |
| State | Accepted/In press - 2026 |
| Externally published | Yes |
Keywords
- aqueous zinc batteries
- hydrogel electrolytes
- low-temperature batteries
- metal–organic polyhedra
- solvation structure
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