Electrospun piezoelectric polymers have attracted enormous interest in recent decades due to their flexibility, lightweight, and good piezoelectric response. This work investigates structure-property relationships in a series of electrospun poly(vinylidene fluoride-co-trifluoroethylene) (PVDF-TrFE) copolymers to find the conditions to maximize the piezoelectric charge coefficient, d33. Nanofibrous mats of PVDF-TrFE at different molar fraction compositions are annealed and/or poled at their respective Curie Temperatures and then characterized using DSC, WAXD, FT-IR, and piezometry. The data collected for the as-spun, annealed, and/or polarized samples are initially analyzed individually, followed by an evaluation of property interrelations. The results show a positive correlation between the d33 and the crystallinity degree and the crystallite size, while a negative correlation with the FT-IR absorbances associated with gauche defects is found. Interestingly, a linear combination of these three properties proves a good predictor of the d33 value. Notably, during this investigation, we measured d33 as high as 37.1, 42.7 and 34.7 pC N-1, for the 70:30, 75:25, 80:20 molar fractions, respectively, ranking among the highest reported for nanofibrous PVDF-TrFE mats. This outstanding result is obtained thanks to the synergic effect of annealing and poling treatments.
Optimizing the piezoelectric response of poly(vinylidene fluoride-co-trifluoroethylene) electrospun mats: effects of copolymer composition, microstructure and thermal treatments / Zanoni, M.; Braidi, N.; Selleri, G.; Cavallo, D.; Focarete, M. L.; Fabiani, D.; Gualandi, C.. - In: EUROPEAN POLYMER JOURNAL. - ISSN 0014-3057. - 236:(2025), pp. N/A-N/A. [10.1016/j.eurpolymj.2025.114159]
Optimizing the piezoelectric response of poly(vinylidene fluoride-co-trifluoroethylene) electrospun mats: effects of copolymer composition, microstructure and thermal treatments
Braidi N.;Selleri G.;Focarete M. L.;Fabiani D.;
2025
Abstract
Electrospun piezoelectric polymers have attracted enormous interest in recent decades due to their flexibility, lightweight, and good piezoelectric response. This work investigates structure-property relationships in a series of electrospun poly(vinylidene fluoride-co-trifluoroethylene) (PVDF-TrFE) copolymers to find the conditions to maximize the piezoelectric charge coefficient, d33. Nanofibrous mats of PVDF-TrFE at different molar fraction compositions are annealed and/or poled at their respective Curie Temperatures and then characterized using DSC, WAXD, FT-IR, and piezometry. The data collected for the as-spun, annealed, and/or polarized samples are initially analyzed individually, followed by an evaluation of property interrelations. The results show a positive correlation between the d33 and the crystallinity degree and the crystallite size, while a negative correlation with the FT-IR absorbances associated with gauche defects is found. Interestingly, a linear combination of these three properties proves a good predictor of the d33 value. Notably, during this investigation, we measured d33 as high as 37.1, 42.7 and 34.7 pC N-1, for the 70:30, 75:25, 80:20 molar fractions, respectively, ranking among the highest reported for nanofibrous PVDF-TrFE mats. This outstanding result is obtained thanks to the synergic effect of annealing and poling treatments.Pubblicazioni consigliate

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