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Electric-field-induced, antiferroelectric-ferroelectric (AFE-FE) phase transitions are common for AFE materials. To date, the strain and preferred orientation evolution as well as the role of the intermediate FE state during the successive AFE-FE-AFE phase transitions has not been clear. To this end, we have herein studied a typical AFE Pb0.97La0.02(Zr0.56Sn0.33Ti0.11)O3 (PLZST) material using in-situ neutron diffraction. It is striking that the AFE-FE phase transition is not fully reversible: in the electric-field-induced FE state, the induced strain exhibits an elliptical distribution, which in turn leads to significant preferred orientation in the final AFE state after withdrawal of the applied electric-field. The ω-dependent neutron diffraction patterns show clear evidence of the induced strain distribution and associated preferred orientation arising from the AFE-FE phase transition. The current work also provides an explanation for several temperature and electric-field dependent dielectric anomalies as well as unrecovered strain change which appear in AFE materials after exposure to sufficiently high electric fields.
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Lü et al. (Wed,) studied this question.
synapsesocial.com/papers/69d678f167f65a2d1d1f2cf9 — DOI: https://doi.org/10.1038/srep23659
Teng Lü
Australian National University
Andrew J. Studer
Australian Nuclear Science and Technology Organisation
Lasse Norén
Australian National University
Scientific Reports
Australian National University
Xi'an Jiaotong University
Australian Nuclear Science and Technology Organisation
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