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Electronic Modulation Strategy for Mass-Producible Ultrastrong Multifunctional Biomass-Based Fiber Aerogel Devices:

Xiaomeng Guan1, Shujuan Tan1, Luqi Wang1

  • 1College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, P. R. China.

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Summary

Green flexible electronics from natural biomass fiber aerogels (BFA) are advanced by interfacial bridging with titanium dioxide nanoarrays. This innovation enhances properties for multifunctional applications, addressing environmental and energy challenges.

Keywords:
biomass aerogelinterfacial bridginglattice strainmultifunctional integrationwearable electronic devices

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Green Chemistry

Background:

  • Green flexible aerogel electronics derived from natural materials offer solutions to global environmental and energy issues.
  • Large-scale production and stable multifunctional applications of natural biomass fiber aerogels (BFA) remain challenging.
  • Developing sustainable and high-performance aerogel-based electronics is crucial.

Purpose of the Study:

  • To develop a novel strategy for enhancing the properties of biomass fiber aerogels (BFA) for multifunctional electronic applications.
  • To investigate the role of interfacial bridging between flower-type titanium dioxide nanoarrays (FTNA) and natural fiber substrates.
  • To enable the transition of natural materials into advanced flexible electronics.

Main Methods:

  • Utilizing interfacial bridging between FTNA and wrinkled natural fiber substrates to induce lattice strain in titania.
  • Employing X-ray absorption fine structure spectroscopy (XAS) to confirm the interfacial bridging regulation strategy.
  • Developing simple processing methods for creating macroscopic BFA products.

Main Results:

  • The interfacial bridging strategy effectively modulated the electronic structure and loss mechanism of BFA.
  • The as-prepared blanket-type BFA (TCBFA) exhibited excellent mechanical, electromagnetic protection, thermal stealth, flame retardancy, and UV resistance.
  • The membrane-type (TCBFAM) demonstrated superior flexibility, efficient Joule heating, and smart response capabilities.

Conclusions:

  • The developed interfacial bridging strategy provides a new concept for designing green, multifunctional fiber-integrated aerogels.
  • This approach facilitates the creation of advanced BFA materials for diverse electronic applications.
  • The study highlights the potential of natural materials in overcoming limitations in current flexible electronics.