首页> 外文期刊>Journal of Applied Physics >Role of dynamic polar nanoregions in heterovalent perovskite relaxor: Inelastic light scattering study of ferroelectric Ti rich Pb(Zn1/3Nb2/3)O3-PbTiO3
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Role of dynamic polar nanoregions in heterovalent perovskite relaxor: Inelastic light scattering study of ferroelectric Ti rich Pb(Zn1/3Nb2/3)O3-PbTiO3

机译:动态极性纳米区域在杂化钙钛矿弛豫剂中的作用:铁电富Ti的Pb(Zn1 / 3Nb2 / 3)O3-PbTiO3的非弹性光散射研究

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摘要

The role of dynamic polar nanoregions (PNRs) of (1-x)Pb(Zn1/3Nb2/3)O3-xPbTiO3 (PZN-100xPT) single crystals with the PT content x = 0.15 (i.e., higher than above the morphotropic phase boundary composition x ∼ 0.09) has been investigated using inelastic light scattering. The remarkable anomaly of the longitudinal acoustic mode is clearly observed in the vicinity of the cubic-tetragonal phase transition temperature at the TC-T = 481 K. A broad central peak (CP) appears below the Burns temperature TB ∼ 700 K. Upon cooling, the relaxation time determined from the CP width clearly shows a critical slowing down when approaching TC-T in contrast with the suppressed slowing down previously observed in PZN-7PT [S. Tsukada and S. Kojima, Phys. Rev. B 78, 144106 (2008)]. These facts are due to the existence of dynamic PNRs and the disappearance of chemically ordered regions resulting from a higher PT content in the solid solution. In the cubic phase, the local symmetry breaking caused by the PNRs was observed by Raman scattering. The initial size of dynamic PNRs is about 3 nm just below TB, and it increases significantly upon cooling below the intermediate temperature T* ∼ 600 K, reaching 10 nm down to TC-T.
机译:(1-x)Pb(Zn1 / 3Nb2 / 3)O3-xPbTiO3(PZN-100xPT)单晶的动态极性纳米区域(PNR)的作用,PT含量x = 0.15(即高于同晶相界以上)用非弹性光散射研究了组成x〜0.09)。在TC-T = 481 K时,在立方四方相变温度附近可以清楚地观察到纵向声模的异常现象。在Burns温度TB〜700 K以下,出现一个宽的中心峰(CP)。与先前在PZN-7PT中观察到的抑制的减慢相反,由CP宽度确定的松弛时间清楚地显示了接近TC-T时的严重减慢。 Tsukada和S. Kojima,物理学。修订版B 78,144106(2008)]。这些事实归因于动态PNR的存在以及固溶体中较高PT含量导致的化学有序区域的消失。在立方相中,通过拉曼散射观察到由PNR引起的局部对称性破坏。动态PNR的初始尺寸大约在TB以下约3 nm,并且在冷却至中间温度T *〜600 K以下时显着增加,直到TC-T达到10 nm。

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