Universal Approach to Integrating Reduced Graphene Oxide into Polymer Electronics

Author:

Abyzova Elena1,Petrov Ilya1,Bril’ Ilya1,Cheshev Dmitry1,Ivanov Alexey1,Khomenko Maxim2ORCID,Averkiev Andrey1,Fatkullin Maxim1,Kogolev Dmitry1ORCID,Bolbasov Evgeniy1ORCID,Matkovic Aleksandar3,Chen Jin-Ju4ORCID,Rodriguez Raul D.1ORCID,Sheremet Evgeniya1ORCID

Affiliation:

1. Research School of Chemistry & Applied Biomedical Sciences, Tomsk Polytechnic University, Lenina Ave, 30, 634050 Tomsk, Russia

2. ILIT RAS−Branch of the FSRC “Crystallography and Photonics” RAS, 140700 Shatura, Russia

3. Department Physics, Mechanics and Electrical Engineering, Montanuniversität Leoben, Franz Josef Strasse 18, 8700 Leoben, Austria

4. School of Materials and Energy, University of Electronic Science and Technology of China, Chengdu 610054, China

Abstract

Flexible electronics have sparked significant interest in the development of electrically conductive polymer-based composite materials. While efforts are being made to fabricate these composites through laser integration techniques, a versatile methodology applicable to a broad range of thermoplastic polymers remains elusive. Moreover, the underlying mechanisms driving the formation of such composites are not thoroughly understood. Addressing this knowledge gap, our research focuses on the core processes determining the integration of reduced graphene oxide (rGO) with polymers to engineer coatings that are not only flexible and robust but also exhibit electrical conductivity. Notably, we have identified a particular range of laser power densities (between 0.8 and 1.83 kW/cm2), which enables obtaining graphene polymer composite coatings for a large set of thermoplastic polymers. These laser parameters are primarily defined by the thermal properties of the polymers as confirmed by thermal analysis as well as numerical simulations. Scanning electron microscopy with elemental analysis and X-ray photoelectron spectroscopy showed that conductivity can be achieved by two mechanisms—rGO integration and polymer carbonization. Additionally, high-speed videos allowed us to capture the graphene oxide (GO) modification and melt pool formation during laser processing. The cross-sectional analysis of the laser-processed samples showed that the convective flows are present in the polymer substrate explaining the observed behavior. Moreover, the practical application of our research is exemplified through the successful assembly of a conductive wristband for wearable devices. Our study not only fills a critical knowledge gap but also offers a tangible illustration of the potential impact of laser-induced rGO-polymer integration in materials science and engineering applications.

Funder

Russian Science Foundation

Austrian Science Fund

Chengdu Science and Technology Program

Tomsk Polytechnic University

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference77 articles.

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