Center of Microstructure Science, Frontier Institute of Science and Technology, State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an 710049, China.
Department of Materials Science and Engineering, The Ohio State University, Columbus, OH 43210, USA.
Sci Rep. 2016 Sep 16;6:33392. doi: 10.1038/srep33392.
Recently it was found that in the lead-free (1-x)BaZr0.2Ti0.8O3-xBa0.7Ca0.3TiO3 (BZT-xBCT) system, the highest piezoelectric d33 coefficient appears at the tetragonal (T) - orthorhombic (O) phase boundary rather than the O - rhombohedral (R) phase boundary, but the physical origin of it is still unclear. In this work we construct the phase diagram of the BZT-xBCT system using a generic sixth-order Landau free energy polynomial and calculate the energy barrier (EB) for direct domain switching between two variants of the stable low-symmetry ferroelectric phase. We find that the EB at the T-O phase boundary is lower than that at the O-R phase boundary and EB may serve as a rigorous quantitative measure of the degree of polarization anisotropy through Landau potential. The calculations may shed some light on the physical origin of the highest piezoelectric coefficients as well as the softest elastic compliance at the T-O phase boundary observed in experiments.
最近发现,在无铅(1-x)BaZr0.2Ti0.8O3-xBa0.7Ca0.3TiO3(BZT-xBCT)体系中,最高的压电 d33 系数出现在四方(T)-正交(O)相界而不是 O-三方(R)相界,但它的物理起源仍不清楚。在这项工作中,我们使用通用的六阶朗道自由能多项式构建了 BZT-xBCT 系统的相图,并计算了两种稳定低对称铁电相之间直接畴转变的能垒(EB)。我们发现 T-O 相界处的 EB 低于 O-R 相界处的 EB,并且 EB 可以作为通过朗道势衡量极化各向异性程度的严格定量指标。这些计算可能有助于解释实验中观察到的最高压电系数以及 T-O 相界处最软弹性柔顺性的物理起源。