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Domain wall and interphase boundary motion in a two-phase morphotropic phase boundary ferroelectric: Frequency dispersion and contribution to piezoelectric and dielectric properties

机译:两相同相相界铁电体中的畴壁和相间边界运动:频率色散及其对压电和介电性能的影响

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摘要

In ferroelectric materials, enhanced dielectric and piezoelectric property coefficients are found in compositions near morphotropic phase boundaries (MPBs). The material response in these compositions may be contributed by enhanced intrinsic piezoelectric distortions or increased interface motion, e.g., contributions from domain wall and interphase boundary motion, though the relative effect of these mechanisms in different materials is not yet well understood. One of the major challenges to developing this understanding is the availability and sensitivity of in situ characterization techniques, particularly during the application of cyclic electric fields of subcoercive or weak amplitude, conditions at which the property coefficients are measured. Here, we use time-resolved neutron diffraction to resolve the subtle electric-field-induced crystallographic strain mechanisms in a prototypical MPB composition, 36%BiScO(3)-64%PbTiO(3), that contains coexisting monoclinic and tetragonal phases. We observe multiple cooperative electromechanical effects including domain wall motion in both the monoclinic and tetragonal phases, interphase boundary motion between the two phases, and electric-field-induced lattice strains. The measured effects span four orders of magnitude in frequency, facilitating the discrimination of intrinsic and extrinsic contributions to properties. Domain wall motion in the monoclinic phase dominates the response, leading to shifts of diffraction peaks as high as 2300 pm/V; these shifts reflect the field-induced changes in average pseudocubic (00h) lattice spacing of the monoclinic phase parallel to the electric field. Domain wall motion in the tetragonal phase is also readily apparent and exhibits a degree of frequency dispersion similar to that measured in both the relative permittivity and piezoelectric coefficients at similar conditions. © 2012, American Physical Society.
机译:在铁电材料中,在变质相界(MPB)附近的成分中发现增强的介电和压电特性系数。这些组合物中的材料响应可能是由增强的固有压电畸变或增加的界面运动引起的,例如,畴壁和相间边界运动的贡献,尽管这些机理在不同材料中的相对作用尚不清楚。发展这种理解的主要挑战之一是原位表征技术的可用性和敏感性,特别是在应用亚矫顽力或弱幅值的循环电场的过程中,应在该条件下测量特性系数。在这里,我们使用时间分辨的中子衍射来解决原型MPB组成36%BiScO(3)-64%PbTiO(3)中的微弱电场诱导的晶体应变机制,其中包含共存的单斜晶相和四方晶相。我们观察到多种协同机电效应,包括单斜相和四方相中的畴壁运动,两相之间的相间边界运动以及电场引起的晶格应变。所测量的效果在频率上跨越四个数量级,从而有助于区分属性的内在和外在贡献。单斜晶相中的畴壁运动占主导地位,导致衍射峰的移动高达2300 pm / V。这些变化反映了电场引起的平行于电场的单斜晶相的平均伪立方(00h)晶格间距的变化。四方相中的畴壁运动也很明显,并且表现出类似于在类似条件下在相对介电常数和压电系数中测得的频率分散度。 ©2012,美国物理学会。

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