Contribution of the irreversible displacement of domain walls to the piezoelectric effect in barium titanate and lead zirconate titanate ceramics
- 9 June 1997
- journal article
- Published by IOP Publishing in Journal of Physics: Condensed Matter
- Vol. 9 (23) , 4943-4953
- https://doi.org/10.1088/0953-8984/9/23/018
Abstract
The contribution from the irreversible displacement of non- domain walls to the direct longitudinal piezoelectric coefficient of and ceramics was determined quantitatively by using the Rayleigh law. Effects of the crystal structure and microstructure of the ceramics as well as the external d.c. pressure on the domain wall contribution to were examined. In barium titanate, this domain wall contribution is large (up to 35% of the total , under the experimental conditions used) and dependent on the external d.c. pressure in coarse grained ceramics, and much smaller and independent of the external d.c. pressure in fine-grained samples. The presence of internal stresses in fine-grained ceramics could account for the observed behaviour. The analysis shows that the domain-wall contribution to the in lead zirconate titanate ceramics is large in compositions close to the morphotropic phase boundary that contain a mixture of tetragonal and rhombohedral phases, and in rhombohedral compositions (up to 40% of the total ). The domain-wall contribution to the piezoelectric response from the irreversible displacement of domain walls is significantly smaller in tetragonal samples where it decreases with increasing spontaneous strain.Keywords
This publication has 14 references indexed in Scilit:
- Logarithmic frequency dependence of the piezoelectric effect due to pinning of ferroelectric-ferroelastic domain wallsPhysical Review B, 1997
- The Rayleigh law in piezoelectric ceramicsJournal of Physics D: Applied Physics, 1996
- Instabilities in the piezoelectric properties of ferroelectric ceramicsSensors and Actuators A: Physical, 1996
- Direct evaluation of domain-wall and intrinsic contributions to the dielectric and piezoelectric response and their temperature dependence on lead zirconate-titanate ceramicsJournal of Applied Physics, 1994
- Force constant and effective mass of 90° domain walls in ferroelectric ceramicsJournal of Applied Physics, 1991
- The role of 90° domain wall displacements in forming physical properties of perovskite ferroelectric ceramicsFerroelectrics Letters Section, 1991
- Domain wall and volume contributions to material properties of PZT ceramicsFerroelectrics, 1989
- Domain wall excitations and their contributions to the weak-signal response of doped lead zirconate titanate ceramicsJournal of Applied Physics, 1988
- Dielectric properties of fine-grained barium titanate ceramicsJournal of Applied Physics, 1985
- Phenomenological Theory of High Permittivity in Fine‐Grained Barium TitanateJournal of the American Ceramic Society, 1966