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钛酸铅中压力诱导的相变:对极化旋转理论的质疑

Pressure-induced phase transitions in PbTiO3: a query for the polarization rotation theory.

作者信息

Frantti J, Fujioka Y, Nieminen R M

机构信息

Laboratory of Physics, Helsinki University of Technology, P.O. Box 4100, FIN-02015 HUT, Finland.

出版信息

J Phys Chem B. 2007 May 3;111(17):4287-90. doi: 10.1021/jp0713209. Epub 2007 Apr 5.

Abstract

Our first-principles computations show that the ground state of PbTiO3 under hydrostatic pressure transforms discontinuously from P4mm to R3c at 9 GPa. Spontaneous polarization decreases with increasing pressure so that the R3c phase transforms to the centrosymmetric Rc phase at around 27 GPa. The first-order phase transition between the tetragonal and rhombohedral phases is exceptional since there is no evidence for a bridging phase. The essential feature of the R3c and Rc phases is that they allow the oxygen octahedron to increase its volume VB at the expense of the cuboctahedral volume VA around a Pb ion. This is further supported by the fact that neither the R3m nor Cm phase, which keep the VA/VB ratio constant, is a ground state within the pressure range between 0 and 40 GPa. Thus, tetragonal strain is dominant up to 9 GPa, whereas at higher pressures, efficient compression through oxygen octahedra tilting plays the central role for PbTiO3. Previously predicted pressure induced colossal enhancement of piezoelectricity in PbTiO3 corresponds to unstable Cm and R3m phases. This suggests that the phase instability, in contrast to the polarization rotation, is responsible for the large piezoelectric properties observed in systems like Pb(Zr,Ti)O3 in the vicinity of the morphotropic phase boundary.

摘要

我们的第一性原理计算表明,在静水压力下,PbTiO₃的基态在9吉帕斯卡时从P4mm不连续地转变为R3c。自发极化随压力增加而降低,因此R3c相在约27吉帕斯卡时转变为中心对称的Rc相。四方相和菱方相之间的一级相变是特殊的,因为没有证据表明存在过渡相。R3c相和Rc相的基本特征是它们允许氧八面体增加其体积VB,而以Pb离子周围的立方八面体体积VA为代价。这一事实进一步得到支持,即保持VA/VB比恒定的R3m相和Cm相在0至40吉帕斯卡的压力范围内都不是基态。因此,在9吉帕斯卡之前四方应变占主导,而在更高压力下,通过氧八面体倾斜的有效压缩对PbTiO₃起核心作用。先前预测的压力诱导PbTiO₃中压电性的巨大增强对应于不稳定的Cm相和R3m相。这表明,与极化旋转相反,相不稳定性是在类Pb(Zr,Ti)O₃系统在准同型相界附近观察到的大压电性能的原因。

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