Photoconductivity of explosive percolation in conductive polymer/graphene oxide nanocomposite films

Author:

Telfah Ahmad D.12,Al‐Bataineh Qais M.34ORCID,Ahmad Ahmad A.5,Aljarrah Ihsan5,Al‐Essa Khansaa6,Houshmand Milad7ORCID,Etzkorn Johannes1,Appel Tamara1

Affiliation:

1. Fachhochschule Dortmund, University of Applied Sciences and Arts Dortmund Germany

2. Department of Physics, Yarmouk University (YU) Irbid Jordan

3. Leibniz Institut für Analytische Wissenschaften‐ISAS‐e.V Dortmund Germany

4. Experimental Physics TU Dortmund University Dortmund Germany

5. Department of Physical Sciences Jordan University of Science & Technology Irbid Jordan

6. Department of Chemistry Jerash University Jerash Jordan

7. Department of Physics and Astronomy University of New Mexico Albuquerque New Mexico USA

Abstract

AbstractIn this study, we explored the behavior of protonated polyaniline/graphene oxide (PANI‐CSA/GO) nanocomposite films with varying GO concentrations, focusing on the novel phenomenon of explosive percolation. We observed a significant increase in electrical conductivity at the explosive percolation threshold, attributed to the emergence of a percolating metallic pathway. This discovery positions PANI‐CSA/GO films as promising materials for various electronic and electrical engineering applications. Additionally, the films demonstrated consistent and repeatable photoconductivity, showing potential for use in high‐performance UV‐photodetectors, photoactive layers in solar cells, light‐emitting diodes, and energy storage devices. Structural analyses using fourier transform infrared spectroscopy (FTIR) and x‐ray diffraction (XRD) confirmed successful GO incorporation within the PANI‐CSA matrix. Different morphological features were observed depending on the GO volume fraction, with increased GO enhancing thermal stability in the conductive zone. Our findings highlight the immense potential of PANI‐CSA/GO nanocomposite films in advanced electronic applications, emphasizing their novel conductive and photoconductive properties and improved thermal stability.

Publisher

Wiley

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