4.8 Article

Dynamic Zn/Electrolyte Interphase and Enhanced Cation Transfer of Sol Electrolyte for All-Climate Aqueous Zinc Metal Batteries

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Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202308068

Keywords

Aqueous Batteries; Dynamic Interphase; Helmholtz Plane; Sol Electrolyte; Zinc Metal

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Ultrathin nanosheets of α-zirconium phosphate (ZrP) are used as an electrolyte additive, which create a dynamic and reversible interphase on the Zn anode and promote the Zn2+ transportation in the electrolyte. This greatly improves the electrochemical performance of Zn metal as an anode material in batteries.
Zn metal as one of the promising anodes of aqueous batteries possesses notable advantages, but it faces severe challenges from severe side reactions and notorious dendrite growth. Here, ultrathin nanosheets of & alpha;-zirconium phosphate (ZrP) are explored as an electrolyte additive. The nanosheets not only create a dynamic and reversible interphase on Zn but also promote the Zn2+ transportation in the electrolyte, especially in the outer Helmholtz plane near ZrP. Benefited from the enhanced kinetics and dynamic interphase, the pouch cells of Zn||LiMn2O4 using this electrolyte remarkably improve electrochemical performance under harsh conditions, i.e. Zn powders as the Zn anode, high mass loading, and wide temperatures. The results expand the materials available for this dynamic interphase, provide an insightful understanding of the enhanced charge transfer in the electrolyte, and realize the combination of dynamic interphase and enhanced kinetics for all-climate performance.

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