Understanding H<sub>2</sub> Evolution Electrochemistry to Minimize Solvated Water Impact on Zinc-Anode Performance.

Yang, Fuhua; Yuwono, Jodie A; Hao, Junnan; Long, Jun; Yuan, Libei; Wang, Yanyan; Liu, Sailin; Fan, Yameng et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

H<sub>2</sub> evolution is the reason for poor reversibility and limited cycle stability with Zn-metal anodes, and impedes practical application in aqueous zinc-ion batteries (AZIBs). Here, using a combined gas chromatography experiment and computation, it is demonstrated that H<sub>2</sub> evolution primarily originates from solvated water, rather than free water without interaction with Zn<sup>2+</sup> . Using linear sweep voltammetry (LSV) in salt electrolytes, H<sub>2</sub> evolution is evidenced to occur at a more negative potential than zinc reduction because of the high overpotential against H<sub>2</sub> evolution on Zn metal. The hypothesis is tested and, using a glycine additive to reduce solvated water, it is confirmed that H<sub>2</sub> evolution and "parasitic" side reactions are suppressed on the Zn anode. This electrolyte additive is evidenced to suppress H<sub>2</sub> evolution, reduce corrosion, and give a uniform Zn deposition in Zn|Zn and Zn|Cu cells. It is demonstrated that Zn|PANI (highly conductive polyaniline) full cells exhibit boosted electrochemical performance in 1 M ZnSO<sub>4</sub> -3 M glycine electrolyte. It is concluded that this new understanding of electrochemistry of H<sub>2</sub> evolution can be used for design of relatively low-cost and safe AZIBs for practical large-scale energy storage.