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The effect of inter-granular constraints on the response of polycrystalline piezoelectric ceramics at the surface and in the bulk
Author(s) -
M. J. Hossain,
Zhiyang Wang,
Neamul H. Khansur,
Justin A. Kimpton,
Jette Oddershede,
J. Daniels
Publication year - 2016
Publication title -
applied physics letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.182
H-Index - 442
eISSN - 1077-3118
pISSN - 0003-6951
DOI - 10.1063/1.4962125
Subject(s) - materials science , crystallite , tetragonal crystal system , piezoelectricity , condensed matter physics , ferroelectricity , electric field , anisotropy , diffraction , texture (cosmology) , lattice constant , lattice (music) , composite material , crystal structure , crystallography , dielectric , optics , chemistry , metallurgy , optoelectronics , physics , image (mathematics) , quantum mechanics , artificial intelligence , computer science , acoustics
© 2016 Author(s). The electro-mechanical coupling mechanisms in polycrystalline ferroelectric materials, including a soft PbZr x Ti 1-x O 3 (PZT) and lead-free 0.9375(Bi 1/2 Na 1/2 )TiO 3 -0.0625BaTiO 3 (BNT-6.25BT), have been studied using a surface sensitive low-energy (12.4 keV) and bulk sensitive high-energy (73 keV) synchrotron X-ray diffraction with in situ electric fields. The resul ts show that for tetragonal PZT at a maximum electric field of 2.8 kV/mm, the electric-field-induced lattice strain (ϵ 111 ) is 20% higher at the surface than in the bulk, and non-180° ferroelectric domain texture (as indicated by the intensity ratio I 002 /I 200 ) is 16% higher at the surface. In the case of BNT-6.25BT, which is pseudo-cubic up to fields of 2 kV/mm, lattice strains, ϵ 111 and ϵ 200 , are 15% and 20% higher at the surface, while in the mixed tetragonal and rhombohedral phases at 5 kV/mm, the domain texture indicated by the intensity ratio, I 111 / I 11 1 and I 002 /I 200 , are 12% and 10% higher at the surface than in the bulk, respectively. The observed difference in the strain contributions between the surface and bulk is suggested to result from the fact that surface grains are not constrained in three dimensions, and consequently, domain reorientation and lattice expansion in surface grains are promoted. It is suggested that the magnitude of property difference between the surface and bulk is higher for the PZT than for BNT-6.25BT due to the level of anisotropy in the strain mechanism. The comparison of the results from different methods demonstrates that the intergranular constraints have a significant influence on the electric-field-induced electro-mechanical responses in polycrystalline ferroelectrics. These results have implications for the design of higher performance polycrystalline piezoelectrics

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