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Multifaceted enhancement of piezoelectricity and optical fluorescence in electrospun PVDF-ceria nanocomposite

  • Nader Shehata
  • , Remya Nair
  • , Ankur Jain
  • , Mohammed Gamal
  • , Ahmad Hassanin
  • , Sara Noman
  • , Islam Shyha
  • , Krzysztof Kruczała
  • , Marwa Saad
  • , Ishac Kandas

Research output: Contribution to journalArticlepeer-review

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Abstract

This study investigates the enhancement of piezoelectric and optical fluorescence properties in electrospun polyvinylidene fluoride (PVDF) nanocomposite membranes doped with cerium oxide (Ce3+) at varying weight percentages. An optical characterisation using absorbance analysis found a blue shift in the bandgap of the ceria NPs, which also enhanced UV absorption in the PVDF polymer. At some additive doses, luminosity analysis demonstrated an incremental fluorescence impact. However, above a certain point, additional increases seemed to have a quenching effect, which decreased fluorescence. FTIR based analysis revealed the enhanced β sheets content to 61.75% in the sample of PVDF with a ceria 5 wt%. The fabricated nanofiber membrane displayed an average fiber diameter of around 108 nm. XRD analysis confirms that the incorporation of Ce3+ significantly promotes the formation of the β-phase in PVDF, thereby improving its piezoelectric response. Additionally, water contact angle measurements indicate increased hydrophobicity in the nanocomposite membranes, expanding their applicability in sensing and energy harvesting applications. ICP-OES and XRF analysis confirm that Ce was successfully incorporated with the PVDF chain. The dual role of ceria as both a nucleating agent for β-phase formation and an optical fluorescence enhancer highlights its potential for the development of multifunctional nanocomposites. This work presents a novel approach to engineering PVDF-based materials with enhanced piezoelectricity and optical fluorescence for advanced technological applications. This ultrasensitive PVDF with a ceria 5 wt% nanogenerator demonstrated pronounced piezoactivity, generating a maximum of 9 V with 3 N load at 1.5 Hz frequency which is almost three times of the output generated by pure PVDF. The formed oxygen vacancies according to tri-valent cerium ions, which have been showed through optical characteristics, supports the nucleation of PVDF chains around ceria NPs. The resultant PVDF/ceria nanomembrane demonstrated a remarkable maximum power density of 89 mW/m2, demonstrating its load-bearing capability. With its dual functionality as an optical sensor and an energy harvesting unit, this adaptable nanocomposite shows potential for use in multifunctional devices.
Original languageEnglish
Article number14073
Pages (from-to)1-21
Number of pages21
JournalScientific Reports
Volume15
Issue number1
Early online date23 Apr 2025
DOIs
Publication statusPublished online - 23 Apr 2025

Bibliographical note

Publisher Copyright:
© The Author(s) 2025.

Data Availability Statement

Data are available based upon a request sent by email to the corresponding author.

Funding

This research work has been funded by a research grant received by the British Embassy in Kuwait according to the project code (PUR 1035037). The open-access publication of this article was funded by the Priority Research Area SciMat under the program \u201CExcellence Initiative \u2013 Research University\u201D at the Jagiellonian University in Krakow. The study was carried out using research infrastructure funded by the European Union in the framework of the Smart Growth Operational Programme, Measure 4.2; Grant No. POIR.04.02.00-00-D001/20, \u201CATOMIN 2.0 \u2013 Center for materials research on ATOMic scale for the INnovative economy\u201D.

FundersFunder number
European CommissionPOIR.04.02.00-00-D001/20
European Commission

    Keywords

    • Percolation threshold
    • Fluorescent nanostructure
    • Crystallinity
    • Absorbance
    • Electroactive phase
    • Beta phase

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