Anelastic and dielectric spectroscopy measurements on PbZr1-xTixO3 (PZT) close to the morphotropic (MPB) and antiferroelectric boundaries provide new insight into some controversial aspects of its phase diagram. No evidence is found of a border separating monoclinic (M) from rhombohedral (R) phases, in agreement with recent structural studies supporting a coexistence of the two phases over a broad composition range x < 0.5, with the fraction of M increasing toward the MPB. It is also discussed why the observed maximum of elastic compliance appears to be due to a rotational instability of the polarization linearly coupled to shear strain. Therefore it cannot be explained by extrinsic softening from finely twinned R phase alone, but indicates the presence also of M phase, not necessarily homogeneous. A new diffuse transition is found within the ferroelectric phase near x ~ 0.1, at a temperature TIT higher than the well established boundary TT to the phase with tilted octahedra. It is proposed that around TIT the octahedra start rotating in a disordered manner and finally become ordered below TT. In this interpretation, the onset temperature for octahedral tilting monotonically increases up to the antiferroelectric transition of PbZrO3, and the depression of TT(x) below x = 0.18 would be a consequence of the partial relief of the mismatch between the average cation radii with the initial stage of tilting below TIT.

Octahedral tilting, monoclinic phase and the phase diagram of PZT

F Cordero;F Trequattrini;C Galassi
2011

Abstract

Anelastic and dielectric spectroscopy measurements on PbZr1-xTixO3 (PZT) close to the morphotropic (MPB) and antiferroelectric boundaries provide new insight into some controversial aspects of its phase diagram. No evidence is found of a border separating monoclinic (M) from rhombohedral (R) phases, in agreement with recent structural studies supporting a coexistence of the two phases over a broad composition range x < 0.5, with the fraction of M increasing toward the MPB. It is also discussed why the observed maximum of elastic compliance appears to be due to a rotational instability of the polarization linearly coupled to shear strain. Therefore it cannot be explained by extrinsic softening from finely twinned R phase alone, but indicates the presence also of M phase, not necessarily homogeneous. A new diffuse transition is found within the ferroelectric phase near x ~ 0.1, at a temperature TIT higher than the well established boundary TT to the phase with tilted octahedra. It is proposed that around TIT the octahedra start rotating in a disordered manner and finally become ordered below TT. In this interpretation, the onset temperature for octahedral tilting monotonically increases up to the antiferroelectric transition of PbZrO3, and the depression of TT(x) below x = 0.18 would be a consequence of the partial relief of the mismatch between the average cation radii with the initial stage of tilting below TIT.
2011
Istituto di Scienza, Tecnologia e Sostenibilità per lo Sviluppo dei Materiali Ceramici - ISSMC (ex ISTEC)
Istituto dei Sistemi Complessi - ISC
Inglese
23
41
415901
10
http://iopscience.iop.org/0953-8984/23/41/415901
Sì, ma tipo non specificato
LEAD-ZIRCONATE-TITANATE
SOLID-SOLUTION SYSTEMS
OXIDE FERROELECTRICS
NEUTRON-DIFFRACTION
LOCAL-STRUCTURE
elenco di 23 citazioni (al 25/1/16) 1. Andronikova D.A.Phys. Solid State5724412015 2. Bennett J.T.Ph.D. Thesis, Univ. Leeds2014 3. Burkovsky R.G.Phys. Rev. Lett.109976032012 4. Chen L.Ceram. Int.3989412013 5. Chen L.B.Current Appl. Phys.1414112014 6. Cordero F.Phys. Rev. B 870941082013 7. Cordero F.Phys. Rev. B 880941072013 8. Cordero F.Phys. Rev. B 892141022014 9. Cordero F.Phase Transit.872552014 10. Cordero F.Appl. Phys. Lett.10549038072014 11. Craciun F.J. Appl. Phys.1171841032015 12. Fraysse G.Inorg. Chem.51126192012 13. Hayn S.Ph.D. Thesis, TU Darmstadt2013 14. Hidayah N.Ferroelectrics4671732014 15. Ivanov S.A.Mater. Res. Bull.4732532012 16. Kainz T.J. Eur. Ceram. Soc.365072016 17. Khansur N.H.Acta Mater.981822015 18. Lu X.Y.J. Appl. Phys.111341012015 19. Morozovska A.N.Phys. Rev. B871341022013 20. Solanki R.S.Appl. Phys. Lett.102529032013 21. Spivakov A.A.Lett. Mater. (Russian)33122013 22. Zhang N.Acta Crystall. B674612011 23. Ke X.Q.Phys. Rev. B 882141052013
4
info:eu-repo/semantics/article
262
F. Cordero ; F. Trequattrini ; F. Craciun ; C. Galassi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/233101
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