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Dynamic transport of Zn2+ in ionic liquid intercalated V2O5 cathode for high-performance aqueous Zn-ion batteries

Wenzhe Su, Zanyu Chen, Xingkai Wang, Peng Cui, Minjie Yao, Hui Sun, Hong Zhang, Yida Deng, Xiaopeng Han, Wenbin Hu

2024Chemical Engineering Journal18 citationsDOIOpen Access PDF

Abstract

Due to high safety and low-cost, aqueous Zn-ion batteries (ZIBs) are expected to be a promising next-generation energy storage technology. Exploiting high capacity and stable cathode materials are extremely important for the development of aqueous ZIBs. However, commercial V 2 O 5 despite its high theoretical specific capacity, suffers from structural instability during charging and discharging, and strong electrostatic forces seriously limit the diffusion of Zn 2+ . Herein, a novel dynamic transport mechanism of Zn 2+ is designed by intercalating organic cations (C 8 H 15 N 2 + ) from ionic liquids into the interlayers of V 2 O 5 . The electrostatic interaction between the C 8 H 15 N 2 + and the V-O layers enhance the structure stability of the layers and increase the interlayer spacing. Meanwhile, the C 8 H 15 N 2 + between the V-O layers reduce the diffusion energy barrier of Zn 2+ and enable the rapid dynamically transport of Zn 2+ . The diffusion coefficient is enhanced by an order of magnitude. The optimized V 2 O 5 cathode exhibits a high capacity of 268 mA h/g at 100 mA/g and excellent cycling stability (over 500 cycles at 200 mA/g with nearly 100 % coulombic efficiency). The home-made pouch cells deliver a high energy density of 310 W h kg −1 . This interesting idea opens up a new research direction for high-energy secondary batteries.

Topics & Concepts

Ionic liquidCathodeAqueous solutionIonMaterials scienceChemical engineeringIonic bondingInorganic chemistryChemistryPhysical chemistryOrganic chemistryEngineeringCatalysisAdvanced battery technologies researchAdvanced Battery Materials and TechnologiesAdvancements in Battery Materials
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