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Synergistic Amorphization and Interfacial Metallization Activates a Mn(VO3)2 Cathode with a Tailored Atomic-Layer
Kangning Wang1, Kunkun Nie1,2, Jingtian Wang1
1State Key Laboratory of Flexible Electronics and Institute of Flexible Electronics, Northwestern Polytechnical University, Xi'an 710129, P. R. China.
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Crystal Mn(VO3)2 (c-MVO) cathodes for aqueous zinc-ion batteries (AZIBs) typically experience irreversible structural degradation and slow Zn2+ diffusion kinetics. Here, we propose a colloidal chemical synthesis strategy that concurrently achieves amorphization and interphase engineering, constructing a-MVO@MoS2 core@shell heterostructures. The in situ grown atomic-layer semimetallic 1T'-MoS2 shell facilitates a-MVO formation and constructs a conductive interphase for faster electron transport, while a a-MVO core provides abundant Zn2+ reaction sites and flexible diffusion paths. Density functional theory calculations confirm that the diffusion barrier of Zn2+ in a-MVO@MoS2 (1.08 eV) is considerably lower than that in c-MVO (3.71 eV). Consequently, the tailored a-MVO@MoS2 cathode delivers a specific capacity of 205.68 mAh g-1 at 0.5 A g-1 (40 times that of c-MVO) and exhibits excellent cycling stability with a capacity retention of 87.64% after 5000 cycles at 10 A g-1. This work paves a crystal phase engineering approach for designing advanced electrode materials for AZIBs.

