Stable zinc anode solid electrolyte interphase via inner Helmholtz plane engineering.

Luo, Jinrong; Xu, Liang; Yang, Yinan; Huang, Song; Zhou, Yijing; Shao, Yanyan; Wang, Tianheng; Tian, Jiaming et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

The inner Helmholtz plane and thus derived solid-electrolyte interphase (SEI) are crucial interfacial structure to determine the electrochemical stability of Zn-ion battery (ZIB). In this work, we demonstrate that introducing β-cyclodextrins (CD) as anion-receptors into Zn(OTf)<sub>2</sub> aqueous electrolyte could significantly optimize the Zn anode SEI structure for achieving stable ZIB. Specifically, β-CD with macrocyclic structure holds appropriate cavity size and charge distribution to encase OTf<sup>-</sup> anions at the Zn metal surface to form β-CD@OTf<sup>-</sup> dominated inner Helmholtz structure. Meanwhile, the electrochemically triggered β-CD@OTf<sup>-</sup> decomposition could in situ convert to the organic-inorganic hybrid SEI (ZnF<sub>2</sub>/ZnCO<sub>3</sub>/ZnS‒(C-O-C/<sup>*</sup>CF/<sup>*</sup>CF<sub>3</sub>)), which could efficiently hinder the Zn dendrite growth with maintain the proper SEI mechanical strength stability to guarantee the long-term stability. The thus-derived Zn | |Zn pouch cell (21 cm<sup>2</sup> size) with β-CD-containing electrolyte exhibits a cumulative capacity of 6450 mAh<sup>-2</sup> cm<sup>-2</sup> at conditions of 10 mAh cm<sup>-2</sup> high areal capacity. This work gives insights for reaching stable ZIB via electrolyte additive triggered SEI structure regulation.