Title :
Electric-field-induced local structural phenomena in Pb-based ABO3-type relaxor ferroelectrics
Author :
Mihailova, Boriana ; Maier, Bernd ; Steilmann, Thomas ; Dul´kin, Evgeniy ; Roth, Michael
Author_Institution :
Fachbereich Geowissenschaften, Univ. Hamburg, Hamburg, Germany
Abstract :
Lead-based ABO3-type relaxors and related systems have numerous applications in modern technical devices because of their remarkably high dielectric permittivity and piezoelectric/electroelastic and electro-optic coefficients. However, lead is not desired from an environmental point of view, and to switch to alternative alkali-, Ba-, or Bi-based relaxor systems, one must understand in great detail the structural mesoscopic order and coupling processes responsible for the outstanding performance and multifunctionality of the exemplar Pb-based compounds. To elucidate the type of ferroic coupling, three relaxor compounds PbSc0.5Ta0.5O3 (PST), Pb0.78Ba0.22Sc0.5Ta0.5O3 (PST-Ba), and PbSc0.5Nb0.5O3 (PSN), were studied by polarized Raman scattering and acoustic emission at different temperatures and under an external electric field. The results reveal the coexistence of mesoscopic-scale ferroelectric and antiferroelectric coupling, which are predominantly related to B-site cations and A-site Pb cations, respectively. This suggests that the polar structural state of relaxors is frustrated ferrielectric. The presence of A-site cations with affinity to off-center is significant for the development of mesoscopic-scale antiferroelectric order coexisting with the mesoscopic-scale ferroelectric order.
Keywords :
Raman spectra; acoustic emission; antiferroelectricity; barium compounds; electro-optical effects; ferroelectricity; lead compounds; permittivity; piezoelectricity; relaxor ferroelectrics; A-site Pb cations; B-site cations; Ba-based relaxor system; Bi-based relaxor system; Pb-based compound multifunctionality; Pb0.78Ba0.22Sc0.5Ta0.5O3; PbSc0.5Nb0.5O3; PbSc0.5Ta0.5O3; acoustic emission; alkali-based relaxor system; coupling processes; dielectric permittivity; electric-field-induced local structural phenomena; electrooptic coefficient; external electric field; ferroic coupling; frustrated ferrielectric; lead-based relaxor ferroelectrics; mesoscopic-scale antiferroelectric coupling; mesoscopic-scale ferroelectric order; piezoelectric-electroelastic coefficient; polar structural state; polarized Raman scattering; structural mesoscopic order; Couplings; Crystals; Electric fields; Lead; Phonons; Raman scattering; Temperature measurement;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2014.006669