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Advancements in Free-Standing Graphene Synthesis Using Electrodeless Microwave Plasma.

Neil Felicio Agesta1,2, Yun-Le Woo1,2, Elton Song-Zhe Mah1,2

  • 1School of Energy and Chemical Engineering, Xiamen University Malaysia, Selangor Darul Ehsan, Malaysia.

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Summary

Electrodeless microwave plasma (EMP) offers a promising alternative for scalable graphene production. This review details EMP

Keywords:
electrodeless microwave plasmagraphene synthesisself‐standing graphenesynthesis parameters

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Area of Science:

  • Materials Science
  • Plasma Physics
  • Nanotechnology

Background:

  • Traditional graphene production methods face challenges in achieving quality, scalability, and cost-effectiveness.
  • Advancements beyond conventional techniques are crucial for industrial graphene applications.
  • Plasma-assisted methods, particularly electrodeless microwave plasma (EMP), show potential for improved graphene synthesis.

Purpose of the Study:

  • To review the specific application of electrodeless microwave plasma (EMP) for graphene production.
  • To address the knowledge gap regarding EMP mechanisms, parameter optimization, and plasma setup.
  • To highlight the unique advantages of EMP, including energy efficiency and substrate-free capabilities.

Main Methods:

  • Focused review of electrodeless microwave plasma (EMP) systems for graphene synthesis.
  • Analysis of key parameters influencing graphene formation and quality.
  • Discussion of characterization techniques relevant to EMP-produced graphene.
  • Exploration of computational modeling for process optimization.

Main Results:

  • EMP offers high energy efficiency and substrate-free/electrodeless configurations for graphene production.
  • Tunable parameters in EMP allow for control over graphene characteristics.
  • This review provides specific insights into EMP systems and parameter influences, differentiating from broader microwave plasma reviews.

Conclusions:

  • Electrodeless microwave plasma (EMP) presents a viable pathway for scalable, efficient, and sustainable graphene production.
  • Further investigation into EMP mechanisms and parameter optimization is needed.
  • Integration of computational modeling can enhance EMP process design for industrial viability.