Kodumudi Venkataraman Lalitha
Department of Materials and Earth Sciences, Technical University of Darmstadt, 64283 Darmstadt, Germany.
Materials (Basel). 2021 Apr 23;14(9):2149. doi: 10.3390/ma14092149.
NaBiTiO-based materials have gained considerable attention for their potential to exhibit giant strain, very-high ionic conductivity comparable to yttria stabilized zirconia or high mechanical quality factor for use in high power ultrasonics. In recent times, quenching NaBiTiO-based compositions have been demonstrated to enhance the thermal depolarization temperature, thus increasing the operational temperature limit of these materials in application. This work investigates the role of quenching-induced changes in the defect chemistry on the dielectric, ferroelectric and piezoelectric properties of quenched NaBiTiO-BaTiO. The quenched samples indeed demonstrate an increase in the bulk conductivity. Nevertheless, while subsequent annealing of the quenched samples in air/oxygen atmosphere reverts back the depolarization behaviour to that of a furnace cooled specimen, the bulk conductivity remains majorly unaltered. This implies a weak correlation between the defect chemistry and enhanced thermal stability of the piezoelectric properties and hints towards other mechanisms at play. The minor role of oxygen vacancies is further reinforced by the negligible (10-15%) changes in the mechanical quality factor and hysteresis loss.
基于铋钛酸钠的材料因其展现出巨大应变的潜力、与氧化钇稳定氧化锆相当的非常高的离子电导率或用于高功率超声的高机械品质因数而备受关注。近年来,已证明对基于铋钛酸钠的组合物进行淬火可提高热去极化温度,从而提高这些材料在应用中的工作温度极限。这项工作研究了淬火引起的缺陷化学变化对淬火后的铋钛酸钠-钛酸钡的介电、铁电和压电性能的作用。淬火后的样品确实表现出体电导率的增加。然而,虽然随后在空气/氧气气氛中对淬火后的样品进行退火会使去极化行为恢复到炉冷样品的状态,但体电导率基本上保持不变。这意味着缺陷化学与压电性能增强的热稳定性之间的相关性较弱,并暗示有其他机制在起作用。机械品质因数和滞后损耗的可忽略不计的(10 - 15%)变化进一步强化了氧空位的次要作用。