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M4X3 MXenes: Application in Energy Storage Devices.

Iftikhar Hussain1, Waqas Ul Arifeen2, Shahid Ali Khan3

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|June 14, 2024
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Summary

This review systematically overviews M4X3 MXenes, highlighting their properties and energy storage applications. It aims to guide researchers in developing these nanomaterials for broader uses.

Keywords:
2D materialsEnergy storageM4X3 MXenesMXeneProperties

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Electrochemistry

Background:

  • MXenes are recognized for excellent thermal stability, conductivity, hydrophilicity, and flexibility.
  • MXenes are classified into families like M2X, M3X2, M4X3, and M5X4 based on layer structure.
  • M4X3 MXenes are a recently developed family with limited studies, necessitating a comprehensive review.

Purpose of the Study:

  • To systematically review recent advancements in M4X3 MXene synthesis, properties, and applications.
  • To focus on the potential of M4X3 MXenes in energy storage devices.
  • To provide guidance for future research and development of M4X3 MXene-based nanomaterials.

Main Methods:

  • Systematic literature review of M4X3 MXene research.
  • Analysis of synthesis methods and characterization techniques.
  • Evaluation of reported properties and performance in energy storage.

Main Results:

  • Compilation of the latest advancements in M4X3 MXene synthesis and properties.
  • Detailed overview of M4X3 MXene applications in various energy storage devices.
  • Identification of research gaps and future directions for M4X3 MXenes.

Conclusions:

  • M4X3 MXenes show significant promise for energy storage applications due to their unique properties.
  • Further research is needed to fully explore their potential and optimize their performance.
  • This review serves as a valuable resource for researchers in the field of MXene materials.