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Lead-free (Ba,Ca)(Ti,Zr)O_3 ceramics within the polymorphic phase region exhibiting large, fatigue-free piezoelectric strains

机译:多态相区域内的无铅(Ba,Ca)(Ti,Zr)O_3陶瓷表现出大的无疲劳压电应变

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Lead-free xBaZrO(3)-(0.85-x) BaTiO3-0.15CaTiO(3); x = 0.00-0.20 (xBZ) ceramics were prepared successfully using the conventional solid-state reaction method. Unipolar electric-field-induced strains of the composition x = 0.125 in the polymorphic phase region (PPR) composition show an extraordinarily high normalized piezoelectric coefficient (d(33)(*)) of 2244 pm/V with relatively low hysteresis at a low electric field of 5 kV/cm, which is higher than that of most reported lead-free ceramics. The PPR composition also exhibits excellent fatigue resistance to bipolar electric cycling with negligible loss of electric-field-induced strain after 10(6) cycles. A two-phase mixture model featuring short-range ordering, which is dispersed in the long-range ferroelectric phase, is proposed to explain the outstanding piezoelectric properties. The reversible electric-field-induced phase transition between the two states is responsible for the large normalized piezoelectric coefficient and fatigue resistance. Under repeated electric cycling, the domains become more dynamic, and the change in domain configuration becomes easier due to decreased energy requirement upon polarization reversal. Furthermore, the ceramic shows single crystal-like behavior characterized by a nearly vertical slope in the polarization hysteresis data, which correlates to the electric field induced transformation from a multi-domain state to a single-domain state. This environmentally benign lead-free ceramic, with outstanding properties, has great potential use for highly responsive and reliable actuators. (C) 2017 Elsevier Ltd. All rights reserved.
机译:无铅xBaZrO(3)-(0.85-x)BaTiO3-0.15CaTiO(3);使用常规的固态反应方法成功地制备了x = 0.00-0.20(xBZ)的陶瓷。多态相区域(PPR)组合物中的x = 0.125的单极电场诱导应变显示出2244 pm / V的极高归一化压电系数(d(33)(*)),并且在较低的磁滞下具有较低的磁滞电场为5 kV / cm,高于大多数报道的无铅陶瓷的电场。 PPR组合物还表现出优异的抗双极电循环疲劳性,在10(6)个循环后电场引起的应变损失可忽略不计。提出了一种具有短程有序的两相混合模型,该模型分散在长程铁电相中,以解释出色的压电性能。两种状态之间可逆电场引起的相变是归一化压电系数大和耐疲劳性的原因。在反复的电循环下,由于极化反转时能量需求的减少,畴变得更加动态,并且畴配置的改变变得更容易。此外,陶瓷表现出类似单晶的行为,其特征在于极化磁滞数据中的垂直斜率接近垂直,这与电场诱导的从多畴态到单畴态的转变有关。这种对环境无害的无铅陶瓷具有出色的性能,可用于具有高响应性和可靠性的执行器。 (C)2017 Elsevier Ltd.保留所有权利。

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