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The origin of ultrahigh piezoelectricity in relaxor-ferroelectric solid solution crystals

机译:弛豫铁电固溶体晶体中超高压电性的起源

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摘要

The discovery of ultrahigh piezoelectricity in relaxor-ferroelectric solid solution single crystals is a breakthrough in ferroelectric materials. A key signature of relaxor-ferroelectric solid solutions is the existence of polar nanoregions, a nanoscale inhomogeneity, that coexist with normal ferroelectric domains. Despite two decades of extensive studies, the contribution of polar nanoregions to the underlying piezoelectric properties of relaxor ferroelectrics has yet to be established. Here we quantitatively characterize the contribution of polar nanoregions to the dielectric/piezoelectric responses of relaxor-ferroelectric crystals using a combination of cryogenic experiments and phase-field simulations. The contribution of polar nanoregions to the room-temperature dielectric and piezoelectric properties is in the range of 50–80%. A mesoscale mechanism is proposed to reveal the origin of the high piezoelectricity in relaxor ferroelectrics, where the polar nanoregions aligned in a ferroelectric matrix can facilitate polarization rotation. This mechanism emphasizes the critical role of local structure on the macroscopic properties of ferroelectric materials.
机译:在弛豫铁电固溶体单晶中发现超高压电性是铁电材料的一项突破。弛豫铁电固溶体的关键特征是与正常铁电畴共存的极性纳米区域(纳米级不均匀性)的存在。尽管进行了二十年的广泛研究,极性纳米区域对弛豫铁电体的基础压电性能的贡献尚未确定。在这里,我们结合低温实验和相场模拟,定量表征极性纳米区域对弛豫铁电晶体的介电​​/压电响应的贡献。极性纳米区域对室温介电和压电性能的贡献在50-80%的范围内。提出了一种中尺度机理来揭示弛豫铁电体中高压电性的起源,其中排列在铁电体中的极性纳米区域可以促进极化旋转。这种机制强调了局部结构对铁电材料宏观性能的关键作用。

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