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Over-poling study of PMN-PT and PIN-PMN-PT crystal grown by Vertical Gradient Freeze method

机译:垂直梯度冻结法生长PMN-PT和PIN-PMN-PT晶体的超极化研究

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3 inch Lead magnesium niobate - lead titanate (PMN-PT) crystal was grown by Vertical Gradient Freeze (VGF) method. Poling reactions of [001]-poled PMN-0.29PT and PMN-0.31PT were studied. DC field 50~1500 V/mm were used to pole along [001] direction, dielectric constant, plate mode coupling coefficient and dielectric loss were recorded. It is shown that piezoelectric properties saturate around 350 kV/mm for PMN-0.29PT and 250 kV/mm for PMN-0.31PT, respectively. Both PMN-0.29PT and PMN-0.31PT experience property degradation due to over-poling over 1300 kV/mm, and PMN-0.31PT is more susceptible to over-poling due to closer vicinity to the Morphotropic Phase Boundary (MPB). The mechanism of over-poling is analyzed by observing dielectric constant against temperature in zero field heating (ZFH) environment. Compared to optimized poled samples, over-poled samples lack rhombohedral-to-tetragonal phase transition, which confirms that over-poling is a field-induced phase transition. Furthermore, over-poling is found reversible by annealing at elevated temperatures. In the case of PMN-0.29PT, over-poling could be reversed by annealing at 300°C for 1 hr. Such discovery could serve as potential remedy for over-poled PMN-PT crystals, although a more comprehensive study must be carried out to verify microscopic phase change and macroscopic property restoration before and after annealing. Above all, it is recommended to impose a DC poling limit of 1000 V/mm anytime for [001] oriented PMN-PT to avoid over-poling. Similar study is to be carried out on PIN-PMN-PT tertiary crystal system.
机译:通过垂直梯度冻结(VGF)方法生长3英寸的铌酸铅镁-钛酸铅(PMN-PT)晶体。研究了[001]-极化PMN-0.29PT和PMN-0.31PT的极化反应。用50〜1500 V / mm的直流场沿[001]方向极化,记录介电常数,平板模式耦合系数和介电损耗。结果表明,对于PMN-0.29PT,压电性能分别饱和在350 kV / mm左右;对于PMN-0.31PT,压电性能分别达到250 kV / mm。由于超过1300 kV / mm的超极化,PMN-0.29PT和PMN-0.31PT均会发生性能下降,而PMN-0.31PT则由于更靠近变质相边界(MPB)而更容易受到超极化的影响。通过在零场加热(ZFH)环境中观察介电常数随温度的变化,分析了过极化的机制。与优化的极化样本相比,超极化样本缺少菱形到四边形的相变,这证实了超极化是场诱导的相变。此外,通过在高温下退火发现过极化是可逆的。在PMN-0.29PT的情况下,可以通过在300°C退火1小时来逆转过极化。尽管必须进行更全面的研究以验证退火前后的微观相变和宏观性能恢复,但是这种发现可以作为超极化PMN-PT晶体的潜在补救措施。最重要的是,建议随时为[001]定向的PMN-PT施加1000 V / mm的直流极化限制,以避免过极化。将在PIN-PMN-PT三级晶体系统上进行类似的研究。

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