Photoinduced flexible graphene/polymer nanocomposites Design, formation mechanism, and properties engineering

Authors
  • A. Lipovka
  • I. Petrov
  • M. Fatkullin
  • G. Murastov
  • A. Ivanov
  • N.E. Villa
  • S. Shchadenko
  • A. Averkiev
  • A. Chernova
  • F. Gubarev
  • M. Saqib
  • W. Sheng
  • J.-J. Chen
  • O. Kanoun
  • I. Amin
  • R.D. Rodriguez
  • E. Sheremet
Publication date 07-2022
Journal Carbon
Volume | Issue number 194
Pages (from-to) 154-161
Organisations
  • Faculty of Science (FNWI) - Van 't Hoff Institute for Molecular Sciences (HIMS)
Abstract
Flexible electronics is a new paradigm with strong implications from healthcare to energy applications. In this context, electrically conductive polymers are the critical components. Here, we report the design, formation mechanism, and applications of a polymer nanocomposite obtained by single-step laser integration of functionalized graphene into a polymer matrix. Laser processing manipulates the physical-chemical properties of this nanocomposite in a controlled and straightforward way, tuning the electrical resistance from a dielectric (MΩ sq−1) to a highly conductive material (Ω sq−1). We combine experimental and computational approaches to elucidate graphene nanocomposite's nature and formation mechanism, evidencing different processes from photothermal polymer melting to shock wave mixing in a liquid phase within a millisecond time scale. We exploit these fundamental insights on the graphene/polymer nanocomposite in the design and fabrication of electrochemical sensing and antenna devices, showing the potential for healthcare and the Internet of Things.
Document type Article
Language English
Published at https://doi.org/10.1016/j.carbon.2022.03.039
Other links https://www.scopus.com/pages/publications/85127350007
Permalink to this page
Back