| Authors | Firas Tayseer Ayasrah1, P. William2 , Mohammed Almakki3, Smita Nirkhi4, Dhananjay Shripad Rakshe5, Pritish Vibhute6, Kalpana G. Joshi6 |
| Affiliations |
1College of Education, Humanities and Science, Al Ain University, Al Ain, UAE 2Karunya Institute of Technology and Sciences, Coimbatore, Tamil Nadu, India 3School of Engineering, Architecture and Interior Design, Amity University Dubai, P.O. Box 345019, Dubai International Academic City, United Arab Emirates 4Symbiosis Institute of Technology, Nagpur Campus, Symbiosis International (Deemed University), Pune, India 5Department of Computer Engineering, Pravara Rural Engineering College Loni, Maharashtra, India 6School of Engineering and Technology, Sanjivani University, Kopargaon, MH, India |
| Е-mail | firas.ayasrah@aau.ac.ae |
| Issue | Volume 18, Year 2026, Number 3 |
| Dates | Received 03 March 2026; revised manuscript received 18 June 2026; published online 26 June 2026 |
| Citation | Firas Tayseer Ayasrah, P. William, et al., J. Nano- Electron. Phys. 18 No 3, 03028 (2026) |
| DOI | https://doi.org/10.21272/jnep.18(3).03028 |
| PACS Number(s) | 81.05.Qk |
| Keywords | Ethylene vinyl acetate (EVA), Polymer nanocomposites, Potassium Sodium Niobate (KNN), Lithium Niobate (LiNbO3), Piezoelectric nanoparticles. |
| Annotation |
Polymer nanocomposite films doped with piezoelectric metal oxide nanoparticles have attracted significant attention due to their potential applications in flexible electronics, sensors, and energy harvesting devices. This research investigates the structure-property correlations in polymer nanocomposite films composed of ethylene vinyl acetate (EVA) doped with piezoelectric metal oxide nanoparticles, specifically Potassium Sodium Niobate (KNN) and Lithium Niobate (LiNbO3). EVA, a copolymer of semi-crystalline polyethylene and amorphous vinyl acetate, provides tunable material properties, making it an ideal matrix for functional nanocomposites. Morphological analysis using SEM and AFM confirmed homogeneous nanoparticle dispersion across different EVA compositions. Structural characterization through XRD and FTIR revealed increased crystallinity and polymer-nanoparticle interactions in doped films. Mechanical testing showed tensile strength from 2 to 13 MPa for 15 % KNN, and 30 % LiNbO3, indicating mechanical reinforcement while maintaining flexibility. These findings demonstrate the potential of KNN- and LiNbO-doped EVA films for flexible electronics, sensors, energy harvesters, and biomedical applications, providing a tunable platform where mechanical reinforcement and piezoelectric responsiveness are simultaneously achieved. |
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