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Vanadium-MOF derivatives/MXene heterostructures for kinetics-enhanced zinc-ion hybrid supercapacitors

  • Zhao Bi
  • , Yangyang Xie
  • , Yi Tang
  • , Xiaodie Xuan
  • , Jianghong Zhou
  • , Ping Wang
  • , Yunqing Kang
  • , Nithima Khaorapapong
  • , Yanhui Chen
  • , Yusuke Yamauchi
  • , Chenhui Yang
  • Northwestern Polytechnical University Xian
  • Xi'an University of Science and Technology
  • Nagoya University
  • University of Queensland
  • Khon Kaen University
  • Kyung Hee University

Research output: Contribution to journalArticlepeer-review

Abstract

Zinc-ion hybrid supercapacitors (ZICs) are promising for wearable and automotive applications, yet their development is challenged by the kinetic mismatch between the carbon cathode and the zinc anode, causing performance decay. In this work, we fabricate a 3D open nanoarchitecture (Ti3C2T z -MC) featuring MIL-88B(V) derivatives and Ti3C2T z , prepared by solvothermal synthesis followed by thermal annealing. The resulting nanocomposite comprises spindle-shaped V2O3@C nanospikes uniformly distributed on Ti3C2T z nanosheets, suppressing MXene self-stacking and creating abundant active interfaces. Its heterostructure, comprising crystalline Ti3C2Tz and V2O3 embedded in an amorphous carbon matrix, enhances conductivity and Zn2+ diffusion, while in-situ electrochemical induction further converts V2O3@C to amorphous V2O5@C, unlocking additional active sites and accelerating ion transport. Consequently, the Ti3C2T z -MC electrode delivers a superior gravimetric capacity of 610.1 mAh g−1 at 0.05 A g−1 that is almost 10 times that of pristine Ti3C2T z , along with noteworthy rate capability and ultralong cycling stability (98.2% capacity retention after 20,000 cycles). Density functional theory calculations attribute the enhanced kinetics to a built-in electric field at the heterointerface for efficient electron transfer and optimal Zn2+ adsorption energy for facile ion transport, collectively boosting the capacitance and rate capability. Furthermore, a flexible ZIC achieves an outstanding energy density of 564.0 Wh kg−1, retains 97% of its capacity at a bending angle of 135°, and can power a red LED. This work offers a generalized heterointerface engineering strategy, featuring intertwined crystalline-amorphous phases, which provides fundamental insights into ion transport and a practical solution to reconcile kinetic mismatch in ZICs.

Original languageEnglish
JournalNano Materials Science
DOIs
StateAccepted/In press - 2026

Keywords

  • Density functional theory
  • Ionic storage mechanisms
  • MXene
  • V-MOF derivatives
  • Zinc-ion hybrid supercapacitors

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