Asymmetric Hydrogel Electrolyte Featuring a Customized Anode and Cathode Interfacial Chemistry for Advanced Zn-I<sub>2</sub> Batteries.

Liu, Qun; Yu, Zhenlu; Fan, Ke; Huang, Haitao; Zhang, Biao · ACS Nano · 2024

basic_science · Level V

Where this comes from

Abstract

An integrated asymmetric hydrogel electrolyte with a tailored composition and chemical structure on the cathode/anode-electrolyte interface is designed to boost the cost-effective, high-energy Zn-I<sub>2</sub> battery. Such a configuration concurrently addresses the parasitic reactions on the Zn anode side and the polyiodide shuttle issue afflicting the cathode. Specifically, the Zn<sup>2+</sup>-cross-linked sodium alginate and carrageenan dual network (Carra-Zn-Alg) is adopted to guide the Zn<sup>2+</sup> transport, achieving a dendrite-free morphology on the Zn surface and ensuring long-term stability. For the cathode side, the poly(vinyl alcohol)-strengthened poly(3,4-ethylenedioxythiophene)polystyrenesulfonate hydrogel (PVA-PEDOT) with high conductivity is employed to trap polyiodide and accelerate electron transfer for mitigating the shuttle effect and facilitating I<sub>2</sub>/I<sup>-</sup> redox kinetics. Attributing to the asymmetrical architecture with a customized interfacial chemistry, the optimized Zn-I<sub>2</sub> cell exhibits a superior Coulombic efficiency of 99.84% with a negligible capacity degradation at 0.1 A g<sup>-1</sup> and an enhanced stability of 10 000 cycles at 5 A g<sup>-1</sup>. The proposed asymmetric hydrogel provides a promising route to simultaneously resolve the distinct challenges encountered by the cathode and anode interfaces in rechargeable batteries.