Video Experimental Relacionado
Updated: Feb 28, 2026

Zinc-Sponge Battery Electrodes that Suppress Dendrites
Published on: September 29, 2020
Química de solvatación adaptada mediante ingeniería de la constante dieléctrica para baterías acuosas de zinc
Xiaoqing Zhu1, Zilong Wang2, Tao Zhang1
1State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai, China.
Abstract:
Aqueous zinc-metal batteries are promising candidates for sustainable energy storage; but their practical viability is severely limited by poor cryogenic performance caused by kinetic sluggishness and interfacial instability. Here we show a strategy for low-temperature ZMBs based on tailoring the Zn2+ solvation environment by engineering the dielectric constant (ε). By incorporating ethyl acetate, a low-ε co-solvent, into a Zn(ClO4)2 electrolyte, we strategically weaken water's hydrogen-bond network and increase cation-anion pairing. This modified solvation structure accelerates Zn2⁺ transport and desolvation, promotes the formation of a protective solid electrolyte interphase rich in organic and inorganic components, and inhibits parasitic hydrogen evolution. Consequently, the optimized electrolyte enhances Zn plating/stripping stability, with Zn||Zn cells operating at 0.2 mA cm-2 for 10 months (25 °C) and 1 mA cm-2 for 4,000 hours (-50 °C), and Zn||PANI batteries at 1 A g-1 sustaining 10,000 cycles with negligible degradation (-50 °C). This work highlights the critical importance of dielectric constant engineering in electrolyte design and paves the way for high-performance, low-temperature aqueous batteries.
Más Videos Relacionados
Videos de Conceptos Relacionados
Electrochemical Systems
Theory of Strong Electrolytes
Standard Electrode Potentials
The Debye–Hückel Theory of Electrolyte Solutions
Electrolyte and Nonelectrolyte Solutions
The Electrical Double Layer

