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Scalable Production of 2D Material Heterostructure Textiles for High-Performance Wearable Supercapacitors.

Md Rashedul Islam1, Shaila Afroj1,2, Nazmul Karim1,2,3

  • 1Centre for Print Research (CFPR), University of the West of England (UWE), Frenchay Campus, Bristol BS16 1QY, U.K.

ACS Nano
|September 11, 2023
PubMed
Summary

Researchers developed advanced wearable supercapacitors using 2D material heterostructures. These textile-based energy storage devices offer high performance and scalability for electronic textiles (e-textiles).

Keywords:
2D materialse-textilesgrapheneheterostructuresupercapacitorswearable electronics

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Area of Science:

  • Materials Science
  • Energy Storage
  • Nanotechnology

Background:

  • Wearable electronic textiles (e-textiles) require efficient, flexible, and scalable energy storage.
  • Current solutions face challenges in performance and large-scale production.

Purpose of the Study:

  • To enhance wearable textile supercapacitors using two-dimensional (2D) material heterostructures.
  • To develop scalable synthesis and fabrication methods for e-textile energy storage.

Main Methods:

  • Scalable synthesis of graphene and molybdenum disulfide (MoS2) via microfluidization.
  • Hierarchical deposition using a pad-dry method for fabricating 2D heterostructure textiles.
  • Performance evaluation of wearable textile supercapacitors.

Main Results:

  • Demonstrated excellent areal capacitance (~105.08 mF cm-2).
  • Achieved high power density (~1604.274 μW cm-2) and energy density (~58.377 μWh cm-2).
  • Exhibited outstanding capacitive retention (~100% after 1000 cycles).

Conclusions:

  • 2D material heterostructures are crucial for high-performance wearable energy storage.
  • The developed methods facilitate scalable production of advanced e-textiles.
  • This work addresses key challenges in powering wearable electronic devices.