Bimetallic (Co/Ni, Ce) MOF decorated V2CTx MXene/CNT for high energy flexible zinc-ion capacitor
Abstract
This study reports the design and fabrication of a high-performance flexible all-solid-state zinc-ion capacitor based on a novel ternary composite, comprising V2CTx MXene (Tx = F, O, Cl, and OH), functionalized carbon nanotubes, and cobalt/nickel–cerium bimetallic metal–organic frameworks. The optimal binary composite ratio was determined through structural, morphological, and electrochemical analyses. Integration with bimetallic (Co and Ce or Ni and Ce) metal–organic framework yielded a ternary composite, which exhibited outstanding electrochemical performance in ZnSO4/KCl electrolyte, achieving a specific capacitance of 1163.2 F g−1 at 2 A g−1. The synergistic combination of high electrical conductivity from functionalized carbon nanotubes, multiple redox-active centers from Co/Ni, Ce, and V species, and the ion intercalation capability of MXene contributed to superior energy storage performance. The assembled flexible all-solid-state zinc-ion capacitor device delivered a remarkable specific capacitance of 667.7 F g−1, an energy density of 133.5 Wh kg−1, and a power density of 1799.5 W kg−1, with 92% capacitance retention over 10 000 cycles and excellent mechanical stability under repeated bending. It establishes the development of promising electrode materials for next-generation flexible and wearable energy storage devices. This study first investigates such a unique combination of V2CTx/functionalized carbon nanotube supported bimetallic metal organic framework for a flexible zinc-ion capacitor.
- This article is part of the themed collection: Supercapacitors for a sustainable energy future

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