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Updated: Jan 31, 2026

Zinc-Sponge Battery Electrodes that Suppress Dendrites
Published on: September 29, 2020
Electric Field Propelled Anion-Type Solvation Structure Reconstruction With Accelerated Kinetics for Low-Temperature
Bingchao Chen1, Xinyue Yang1, Yongfen Lv1
1Key Laboratory of Fine Chemicals in Universities of Shandong, Jinan Engineering Laboratory For Multi-scale Functional Materials, School of Chemistry and Chemical Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan, Shandong, China.
Abstract:
Organic-rich eutectic electrolytes, which have been prevalent to address the electrolyte freezing and Zn dendrite growth challenges for low-temperature aqueous zinc-based batteries, suffer from sluggish Zn2+ desolvation kinetics and mass transport. Here, we introduce aprotic acetone as a cosolvent to improve the performance of aqueous Zn(BF4)2-based electrolyte under cold environments. Leveraging dynamic keto-enol tautomerism in the primary solvation sheath of Zn2+ propelled by the electrical double layer electric field, an anion-type solvation structure is established, which shortens the Zn2+ desolvation path with accelerated kinetics and constructs a tough and tight interface with a gradient organic-inorganic configuration, eventually enabling uniform Zn deposition at low temperatures. As a result, Zn||Zn symmetric cells sustain for 7500 h at 1 mA·cm-2 and over 1200 h with 34.2 % DOD at 10 mA·cm-2 under -40°C. Pouch-cell properties are demonstrated by matching a PEDOT-V2O5 cathode, which harvests a high capacity of 150 mAh over 210 cycles under practical conditions (N/P = 4.33 and E/C = 6.0 µL mg-1) and holds approaching 100 % capacity retention at -40°C. This work provides an effective strategy toward industrializing practical cold-resistant zinc-based batteries via modulating the electrolyte structure.
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