Journal of Inorganic Materials ›› 2013, Vol. 28 ›› Issue (2): 123-130.DOI: 10.3724/SP.J.1077.2013.12127
• Orginal Article • Next Articles
DU Gang, LIANG Rui-Hong, LI Tao, LU Xiao-Rong, WANG Gen-Shui, DONG Xian-Lin
Received:
2012-03-01
Revised:
2012-05-23
Published:
2013-02-10
Online:
2013-01-23
About author:
DU Gang. E-mail: dugang0623@163.com
Supported by:
CLC Number:
DU Gang, LIANG Rui-Hong, LI Tao, LU Xiao-Rong, WANG Gen-Shui, DONG Xian-Lin. Recent Progress on Defect Dipoles Characteristics in Piezoelectric Materials[J]. Journal of Inorganic Materials, 2013, 28(2): 123-130.
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Fig. 2 (a) Aging of the piezoelectric coefficient for BaTi0.98Ca0.02O2.98 ceramic after poling[30]; (b) Aging of the dielectric constant and the dielectric loss for Ba(Ti1-xFex)O3 ceramics[29]
Fig. 3 Schematic representation of (a) asymmetric polarization hysteresis curve (b) I-E curve (c) domain switching of aged piezoelectric ceramics containing defect dipoles (P denotes spontaneous polarization, Ei denotes internal bias field) [18]
Fig. 7 Mechanism of large electro-shape-memory by reversible domain switching in aged ferroelectrics (a) multidomain tetragonal ferroelectrics after aging (b) single-domain state by electric field E (c) double hysteresis loop (P-E curve) during reversible domain switching (d) huge electrostrain (ε-E curve) during reversible domain switching[37]
Fig. 8 Large electric-field-induced strain in an aged [001]- oriented BaTiO3 single crystal in comparison with the piezoelectric effect of PZT ceramics and PZN-PT single crystals[13]
Fig. 9 (a) Comparison of the nonlinear recoverable electrostrain in Ba0.95Sr0.05TiO3-1Mn ceramics with linear piezoelectric strain of BaTiO3 and PZT ceramics and (b) bipolar electrostrain curves for the aged and fresh Mn-doped KNbO3 based piezoelectric ceramics[11,14]
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