Mixed-Dimensional (2D/3D/3D) Heterostructured Vanadium Oxide with Rich Oxygen Vacancies for Aqueous Zinc Ion Batteries with High Capacity and Long Cycling Life

ACS APPLIED MATERIALS & INTERFACES(2024)

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摘要
Heterostructure engineering and oxygen vacancy engineering are the most promising modification strategies to reinforce the Zn2+ ion storage of vanadium oxides. Herein, a rare mixed-dimensional material (VO x ), composed of V2O5 (2D), V3O7 (3D), and V6O13 (3D) heterostructures, rich in oxygen vacancies, was synthesized via thermal decomposition of layered ammonium vanadate. The VO x cathode provides an exceptional discharge capacity (411 mA h g(-1) at 0.1 A g(-1)) and superior cycling stability (the capacity retention remains close to 100% after 800 cycles at 2 A g(-1)) for aqueous zinc-ion batteries (AZIBs). Ex situ characterizations confirm that the byproduct Zn3V2O7(OH)(2)center dot nH(2)O is generated/decomposed during discharge/charge processes. Furthermore, VO x demonstrates reversible intercalation/deintercalation of H+/Zn2+ ions, enabling efficient energy storage. Remarkably, a reversible crystal-to-amorphous transformation in the V2O5 phase of VO x during charge-discharge was observed. This investigation reveals that mixed-dimensional heterostructured vanadium oxide, with abundant oxygen vacancies, serves as a highly promising electrode material for AZIBs, further advancing the comprehension of the storage mechanism within vanadium-based cathode materials.
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heterostructure vanadium oxides,excellent dischargecapacity,superior cycling stability,cathode materialsfor AZIBs,storage mechanism
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