Stable Zinc Anodes Enabled by a Zincophilic Polyanionic Hydrogel Layer.

Yang, Jin-Lin; Li, Jia; Zhao, Jian-Wei; Liu, Kang; Yang, Peihua; Fan, Hong Jin · Adv Mater · 2022

basic_science · Level V

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Abstract

The practical application of the Zn-metal anode for aqueous batteries is greatly restricted by catastrophic dendrite growth, intricate hydrogen evolution, and parasitic surface passivation. Herein, a polyanionic hydrogel film is introduced as a protective layer on the Zn anode with the assistance of a silane coupling agent (denoted as Zn-SHn). The hydrogel framework with zincophilic -SO<sub>3</sub> <sup>-</sup> functional groups uniformizes the zinc ions flux and transport. Furthermore, such a hydrogel layer chemically bonded on the Zn surface possesses an anti-catalysis effect, which effectively suppresses both the hydrogen evolution reaction and formation of Zn dendrites. As a result, stable and reversible Zn stripping/plating at various currents and capacities is achieved. A full cell by pairing the Zn-SHn anode with a NaV<sub>3</sub> O<sub>8</sub> ·1.5 H<sub>2</sub> O cathode shows a capacity of around 176 mAh g<sup>-1</sup> with a retention around 67% over 4000 cycles at 10 A g<sup>-1</sup> . This polyanionic hydrogel film protection strategy paves a new way for future Zn-anode design and safe aqueous batteries construction.