Neutron Diffraction Study of Field Cooling Effects on Relaxor Ferroelectrics Pb[(Zn_{1/3} Nb_{2/3})_{0.92} Ti_{0.08}] O_{3}
Kenji Ohwada, Kazuma Hirota, Paul W. Rehrig, Yasuhiko Fujii, Gen, Shirane

TL;DR
This study uses neutron diffraction to investigate how high temperature and electric fields influence phase transitions in relaxor ferroelectric Pb[(Zn_{1/3} Nb_{2/3})_{0.92} Ti_{0.08}]O_3, revealing new phases and transition pathways.
Contribution
It uncovers a previously unidentified phase, X, and details the irreversible phase transition mechanisms under field cooling and zero field cooling conditions.
Findings
Discovered a new phase, X, with unique lattice parameters.
Observed irreversible X to M_C transition under field cooling.
Confirmed electric field-induced phase transitions including M_C to T.
Abstract
High-temperature (T) and high-electric-field (E) effects on Pb[(Zn_{1/3} Nb_{2/3})_{0.92} Ti_{0.08}]O_3 (PZN-8%PT) were studied comprehensively by neutron diffraction in the ranges 300 <= T <= 550 K and 0 <= E <= 15 kV/cm. We have focused on how phase transitions depend on preceding thermal and electrical sequences. In the field cooling process (FC, E parallel [001] >= 0.5 kV/cm), a successive cubic (C) --> tetragonal (T) --> monoclinic (M_C) transition was observed. In the zero field cooling process (ZFC), however, we have found that the system does not transform to the rhombohedral (R) phase as widely believed, but to a new, unidentified phase, which we call X. X gives a Bragg peak profile similar to that expected for R, but the c-axis is always slightly shorter than the a-axis. As for field effects on the X phase, we found an irreversible X --> M_C transition via another monoclinic…
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