English

High-pressure neutron study of the morphotropic PZT: phase transitions in a two-phase system

Materials Science 2015-06-04 v1

Abstract

In piezoelectric ceramics the changes in the phase stabilities versus stress and temperature in the vicinity of the phase boundary play a central role. The present study was dedicated to the classical piezoelectric, lead-zirconate-titanate (PZT) ceramic with composition Pb(Zr0.54_{0.54}Ti0.46_{0.46})O3_3 at the Zr-rich side of the morphotropic phase boundary at which both intrinsic and extrinsic contributions to piezoelectricity are significant. The pressure-induced changes in this two-phase (rhombohedral R3cR3c+monoclinic CmCm at room temperature and R3c+P4mmR3c+P4mm above 1 GPa pressures) system were studied by high-pressure neutron powder diffraction technique. The experiments show that applying pressure favors the R3cR3c phase, whereas the CmCm phase transforms continuously to the P4mmP4mm, which is favored at elevated temperatures due to the competing entropy term. The CmR3cCm\rightarrow R3c phase transformation is discontinuous. The transformation contributes to the extrinsic piezoelectricity. An important contribution to the intrinsic piezoelectricity was revealed: a large displacement of the BB cations (Zr and Ti) with respect to the oxygen anions is induced by pressure. Above 600 K a phase transition to a cubic phase took place. Balance between the competing terms dictates the curvature of the phase boundary. After high-pressure experiments the amount of rhombohedral phase was larger than initially, suggesting that on the Zr-rich side of the phase boundary the monoclinic phase is metastable.

Keywords

Cite

@article{arxiv.1202.2883,
  title  = {High-pressure neutron study of the morphotropic PZT: phase transitions in a two-phase system},
  author = {J. Frantti and Y. Fujioka and J. Zhang and S. Wang and S. C. Vogel and R. M. Nieminen and A. M. Asiri and Y. Zhao and A. Y. Obaid},
  journal= {arXiv preprint arXiv:1202.2883},
  year   = {2015}
}

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