open access publication

Article, 2023

Fabrication and characterization of MXene/CuCrO nanocomposite for diverse energy applications

Journal of Materials Research and Technology, ISSN 2238-7854, Volume 24, Pages 2668-2677, 10.1016/j.jmrt.2023.03.150

Contributors

Shafique R. 0000-0001-7735-5764 [1] Rani M. 0000-0002-9117-3403 (Corresponding author) [1] Batool K. 0000-0002-0375-3492 [1] Alothman A.A. 0000-0002-4701-5424 [2] Saleh Mushab M.S. [2] Shah A.A. 0000-0003-3040-1668 [3] Kanwal A. [4] Ali S. 0000-0001-7865-2664 [5] Arshad M. [6]

Affiliations

  1. [1] The Women University Multan
  2. [NORA names: Pakistan; Asia, South];
  3. [2] King Saud University
  4. [NORA names: Saudi Arabia; Asia, Middle East];
  5. [3] NED University of Engineering and Technology
  6. [NORA names: Pakistan; Asia, South];
  7. [4] Quaid-i-Azam University
  8. [NORA names: Pakistan; Asia, South];
  9. [5] Technical University of Denmark
  10. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];

Abstract

This work comprises facile synthesis of MXene/CuCrO nanocomposite using co-precipitation method for studying unique and significant energy storage properties by triggering world to design and fabricate nano-electrode material with maximized specific capacitance, conductivity and stability. Average crystallite size were found to be 21.2 nm, 28.5 nm and 8.7 nm for CuCrO, TiCT and TiCT/CuCrO nanocomposites whereas sandwich like morphology with an average grain size of 1.53 nm is evident from SEM micrographs. Further analysis by Energy dispersive X-ray spectroscopy reveals elemental distribution with complete aluminum removal showing MXene successful etching. Raman spectra confirms presence of both D and G band whereas PL spectra showing merged peak at 376 nm due to structural distortions. From FTIR spectra, presence of both copper chromite and MXene within nanocomposite is evident. UV–Vis spectroscopy confirmed decrease in bandgap value from 2.06 eV to 1.56 eV whereas zeta potential value of −13.8 mV for TiCT/CuCrO as compared to TiCT zeta potential value of −23 mV confirmed nanocomposite stability. Nanocomposite based nano-electrode material shows maximum specific capacitance of 445.5 Fg in acidic electrolyte (0.1M HSO) comparable to basic electrolyte possessing maximum stability over 500 cycles with no further decrease in current. This progress report acts as a reference and a scientific inspiration to design and fabricate TiCT/CuCrO nanocomposite based nano-electrode material to overcome increasing demand for next-generation energy storage systems.

Keywords

Energy bandgap, Energy storage applications, Nanocomposite, Scanning electron microscopy, UV–Vis spectroscopy, X-ray diffraction

Funders

  • NRPU
  • Women University Multan
  • NED University of Engineering and Technology
  • King Saud University
  • Higher Education Commission, Pakistan
  • Department of Physics, Harvard University

Data Provider: Elsevier