Title :
Pressure-induced relaxor-to-ferroelectric crossover in vinylidene fluoride relaxor terpolymer: a possible explanation to the high performance of the terpolymer nanocomposites
Author :
Bauer, Francois ; Eyraud, Lucien ; Samara, George A. ; Seung Tae Choi
Author_Institution :
Advices in Ferrorelaxor Polymer, St. Louis, France
Abstract :
In this paper, we will present electromechanical behavior of the poly(vinylidene fluoridetrifluoroethylene- 1,1-chlorofluoroethylene) [P(VDF-TrFE-CFE)] terpolymer under hydrostatic pressure. The dielectric data obtained under controlled hydrostatic pressure suggest a reversible pressure-induced crossover from the relaxor state to a ferroelectric state in the terpolymer (PVDF/TrFE/CFE 64.3/27.6/8.1 mol %). It was also observed that the P(VDF-TrFE-CFE) terpolymer quenched in ice water shows ferroelectric-like hysteresis loop. These results have led us to the theoretical analysis of a charged sphere, with which it was estimated that the change of a bipolar state of nanoparticles in a terpolymer matrix to a unipolar state due to a possible ionization of the medium under applied electric field could induce electrostatic pressure high enough to generate relaxor-to-ferroelectric crossover. The hysteresis loop of polymer-modified reduced graphene oxide/poly(vinylidene fluoride-trifluoroethylene-clorotrifluoroethylene) terpolymer nanocomposite was also measured to ensure that the relaxor-to-ferroelectric crossover may take place in the nanocomposite.
Keywords :
dielectric hysteresis; dielectric polarisation; electromechanical effects; ferroelectricity; filled polymers; graphene; nanocomposites; nanoparticles; particle reinforced composites; polymer blends; quenching (thermal); relaxor ferroelectrics; CO; P(VDF-TrFE-CFE) terpolymer nanocomposites; bipolar state; charged sphere; dielectric properties; electric field; electromechanical properties; electrostatic pressure; ferroelectric-like hysteresis loop; ice water; ionization; nanoparticles; poly(vinylidene fluoride-trifluoroethylene-1,1-chlorofluoroethylene); polymer-modified reduced graphene; quenching; reversible pressure-induced relaxor-to-ferroelectric crossover; unipolar state; vinylidene fluoride relaxor terpolymer; Electric fields; Films; Hysteresis; Iron; Nanocomposites; Polymers; Strain; Relaxor polymer; electric field; electrostrictive terpolymer; hydrostatic pressure; nanocomposites; permittivity; polyvinylidene fluoride chlorofluoroethylene; strain; stress;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2015.7116337