Dual-protection strategy for superior stability and performance of zinc powder-based anodes in aqueous zinc-ion batteries

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초록

Aqueous zinc-ion batteries (AZIBs) are an attractive alternative to lithium-ion batteries due to their safety, cost-effectiveness, and environmental friendliness. However, the commercialization of AZIBs is hindered by issues such as dendrite formation, side reactions, and poor utilization of zinc anodes. To address these challenges, we developed a dual-protection strategy incorporating reduced graphene oxide (rGO)-encapsulated zinc powder and a polyacrylic acid (PAA) binder. The rGO layer acts as a physical barrier, suppressing dendrite growth and minimizing side reactions, while the PAA binder enhances electrolyte affinity and ensures uniform zinc-ion deposition through hydrogen bonding. This synergistic system demonstrated exceptional electrochemical performance, achieving stable cycling with a significantly reduced overpotential. Symmetric cells exhibited prolonged cycle life exceeding 670 h at a high depth of discharge (33%) with minimal degradation. Additionally, full cells paired with ammonium vanadate nanofiber cathodes achieved high capacities and excellent retention, outperforming conventional zinc-powder-based anode configurations. This work provides a scalable and practical approach to improving the stability and performance of zinc powder-based anodes, offering a viable pathway toward next-generation energy storage systems.

키워드

BindersCost EffectivenessElectric DischargesElectrolytesHydrogen BondsIonsLithium-ion BatteriesReduced Graphene OxideZincIon BatteriesLithium IonsPerformancePoly(acrylic Acid)Powder-basedProtection StrategyReduced Graphene OxidesSide ReactionsZinc IonsZinc PowderAnodesREDUCTION
제목
Dual-protection strategy for superior stability and performance of zinc powder-based anodes in aqueous zinc-ion batteries
저자
Yoon, JinhyeongKim, JihongLee, KangminChae, JongeunSong, ChihoJo, HyeonminLim, Hee-DaeBansal, NeetuSalunkhe, Rahul R.Ahn, Heejoon
DOI
10.1039/d5ta00445d
발행일
2025-09
유형
Article
저널명
Journal of Materials Chemistry A
13
35
페이지
1 ~ 14