Title :
Dependence of ferroelectric switching time of PVDF on mechanical stress and on blending
Author :
Stein, M. ; Jungnickel, B.-J.
Author_Institution :
Deutsches Kunststoff-Inst., Darmstadt, Germany
fDate :
4/1/1997 12:00:00 AM
Abstract :
We report on the ferroelectric switching times τs in polyvinylidene fluoride (PVDF), blended with polymethylmethacrylate, subjected to a mechanical stress σ2 in the transverse direction, and also with the use of different electrode materials. In contrast to theoretical predictions, τs does not depend on σ2, which indicates that the importance of the pseudo-hexagonal crystallography of the crystalline β-modification of PVDF has been overestimated. The saturation polarization decreases severely with decreasing PVDF content whereas τs stays constant. Finally, the injection of space charges is of minor importance for both the ferroelectric switching and the attainable polarization, since these do not depend on the electrode material. We conclude that the internal field is not influenced by blending but that this treatment reduces the amorphous phase contribution to the polarization. The dynamics and the strength of the polarization of PVDF can be understood only if the contributions of the orientation correlations and of the dynamics of the polymer chains in the crystal-amorphous interphase to the overall polarization are taken into account in this semi-crystalline material
Keywords :
electromechanical effects; ferroelectric materials; ferroelectric switching; polymer blends; PVDF; amorphous phase; blending; crystal-amorphous interphase; crystalline β-phase; electrode material; ferroelectric switching time; internal field; mechanical stress; orientation correlations; polymer chain dynamics; polymethylmethacrylate; polyvinylidene fluoride; pseudo-hexagonal crystallography; saturation polarization; semi-crystalline material; space charge injection; Amorphous materials; Crystalline materials; Crystallization; Crystallography; Electrodes; Ferroelectric materials; Polarization; Polymers; Space charge; Stress;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on