Enhanced magnetoelectric and energy storage performance of strain-modified PVDF-Ba 0.7 Ca 0.3 TiO 3 -Co 0.6 Zn 0.4 Fe 2 O 4 nanocomposites
Journal of Energy Storage, ISSN: 2352-152X, Vol: 87, Page: 111454
2024
- 2Citations
- 15Captures
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Article Description
The experimental development of thin films that exhibit higher room-temperature low-field magnetoelectric (ME) sensing without compromising reliable electrical energy storage capabilities is rare. Here, an improved ferroelectric polarization, ME coupling and energy storage performance of polymer-based nanocomposites, which find applications in portable high-power dielectric capacitors, are studied. Multiferroic nanofiller-based three-phase flexible nanocomposites, polyvinylidene fluoride (PVDF)-(Ba 0.7 Ca 0.3 )TiO 3 -(Co 0.6 Zn 0.4 )Fe 2 O 4, were fabricated using compression molding to enhance polarization which is pivotal for applications. PVDF with a high β-phase content (92.4 %), switchable ferroelectric behavior and higher breakdown strength (510 kV/mm) was obtained under optimized process conditions (500 MPa at 165 °C). The fabrication assisted alteration of intermolecular chain distance results in a tensile strain (1.42 %) of β-crystallites corresponding to an internal stress of ~21 MPa. The progressive increase of nanofiller content has led to enhanced polarization (11 μC/cm 2 ), soft ferromagnetic properties, and enhanced ME coupling of 59 mV/cm-Oe due to switchable magnetostriction ( λ 11 = −18 ppm and d λ 11 /d = −22 × 10 −9 Oe −1 ) at lower saturation field of 1.2 kOe. The ME sensitivity was found to be more than two-folds enhanced compared to solution-cast films making them prospective self-biased flexible devices for wearable electronics. Simultaneously, enhanced change of magnetization (19.6 %) under electric field was obtained. Detailed energy storage characteristics confirm that the nanofiller inclusion up to 7.12 vol% effectively improved the recoverable energy storage density (21.2 J/cm 3 ) with an efficiency of 67 %. The experimental and simulation results corroborate a significantly improved breakdown strength of 617 kV/mm with reliable performance. Thus, careful processing provides viable polymer dielectrics with beneficial storage characteristics.
Bibliographic Details
http://www.sciencedirect.com/science/article/pii/S2352152X24010399; http://dx.doi.org/10.1016/j.est.2024.111454; http://www.scopus.com/inward/record.url?partnerID=HzOxMe3b&scp=85189517791&origin=inward; https://linkinghub.elsevier.com/retrieve/pii/S2352152X24010399; https://dx.doi.org/10.1016/j.est.2024.111454
Elsevier BV
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