Coupling High Rate Capability and High Capacity in an Intercalation-Type Sodium-Ion Hybrid Capacitor Anode Material of Hydrated Vanadate via Interlayer-Cation Engineering.

ACS Appl Mater Interfaces

School of Chemistry and Chemical Engineering, Anhui Key Laboratory of Controllable Chemical Reaction and Materials Chemical Engineering, Hefei University of Technology, Hefei 230009, P.R. China.

Published: April 2022

Layered metal vanadates with intercalation pseudocapacitive behaviors show great promise for applications in sodium-ion hybrid capacitor anode materials due to their large interlayer distances, which benefit the fast Na solid-state diffusion. However, their charge storage capacity is significantly constrained by the limited available sites that allow the intercalation of Na ions. In this work, by engineering the interlayer cations, NiZnVO·1.07HO is designed as a high-performance anode material in sodium-ion hybrid capacitors. The Ni/Zn codoping in the layered vanadate leads to the integration of high rate capability and high specific capacity. Specifically, the spacious interlayer spacing and the pillaring effects of Zn ions together lead to the high rate performance and decent cycling stability, while the redox reactions of the interlayer Ni ions efficiently upgrade the charge storage capacity of this layered material. Accordingly, this work offers a promising avenue to further optimizing the Na storage performance of layered vanadates via interlayer-cation engineering.

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Source
http://dx.doi.org/10.1021/acsami.2c02644DOI Listing

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