Flexible Piezoresistive Polystyrene Composite Sensors Filled with Hollow 3D Graphitic Shells

Author:

Guzenko Nataliia12ORCID,Godzierz Marcin13ORCID,Kurtyka Klaudia13,Hercog Anna1,Nocoń-Szmajda Klaudia1,Gawron Anna14,Szeluga Urszula13,Trzebicka Barbara13,Yang Ruizhi5,Rümmeli Mark H.1567

Affiliation:

1. Centre of Polymer and Carbon Materials, Polish Academy of Sciences, M. Curie-Skłodowskiej 34, 41-819 Zabrze, Poland

2. Chuiko Institute of Surface Chemistry, National Academy of Sciences of Ukraine, General Naumov Str. 17, 03164 Kyiv, Ukraine

3. International Polish-Ukrainian Research Laboratory ADPOLCOM, 41-800 Zabrze, Poland

4. Faculty of Biomedical Engineering, Silesian University of Technology, Roosevelta 40 Street, 41-800 Zabrze, Poland

5. Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province, Soochow Institute for Energy and Materials Innovations, College of Energy, Soochow University, Suzhou 215006, China

6. Leibniz Institute for Solid State and Materials Research Dresden, P.O. Box 270116, D-01171 Dresden, Germany

7. Institute of Environmental Technology, Centre for Energy and Environmental Technologies, VSB—Technical University of Ostrava, 17. Listopadu 15, 708 33 Ostrava, Czech Republic

Abstract

The objective of this research was to develop highly effective conductive polymer composite (CPC) materials for flexible piezoresistive sensors, utilizing hollow three-dimensional graphitic shells as a highly conductive particulate component. Polystyrene (PS), a cost-effective and robust polymer widely used in various applications such as household appliances, electronics, automotive parts, packaging, and thermal insulation materials, was chosen as the polymer matrix. The hollow spherical three-dimensional graphitic shells (GS) were synthesized through chemical vapor deposition (CVD) with magnesium oxide (MgO) nanoparticles serving as a support, which was removed post-synthesis and employed as the conductive filler. Commercial multi-walled carbon nanotubes (CNTs) were used as a reference one-dimensional graphene material. The main focus of this study was to investigate the impact of the GS on the piezoresistive response of carbon/polymer composite thin films. The distribution and arrangement of GS and CNTs in the polymer matrix were analyzed using techniques such as X-ray diffraction and scanning electron microscopy, while the electrical, thermal, and mechanical properties of the composites were also evaluated. The results revealed that the PS composite films filled with GS exhibited a more pronounced piezoresistive response as compared to the CNT-based composites, despite their lower mechanical and thermal performance.

Funder

National Science Center program for scientists from Ukraine to continue research in Poland

Centre of Polymer and Carbon Materials of the Polish Academy of Sciences, Poland

National Science Centre, Poland

National Natural Science Foundation of China

Czech Republic from ERDF “Institute of Environmental Technology—Excellent Research”

Sino-German Research Institute

European Union’s Horizon Europe research and innovation programme

REFRESH—Research Excellence For Region Sustainability and High-tech Industries Project

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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