首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Local Crystal Structure of Antiferroelectric Bi2Mn_(4/3)Ni_(2/3)O6 in Commensurate and Incommensurate Phases Described by Pair Distribution Function (PDF) and Reverse Monte Carlo (RMC) Modeling
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Local Crystal Structure of Antiferroelectric Bi2Mn_(4/3)Ni_(2/3)O6 in Commensurate and Incommensurate Phases Described by Pair Distribution Function (PDF) and Reverse Monte Carlo (RMC) Modeling

机译:用成对分布函数(PDF)和反向蒙特卡洛(RMC)建模描述反铁电Bi2Mn_(4/3)Ni_(2/3)O6在相称和不相称中的局部晶体结构

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摘要

The functional properties of materials can arise from local structural features that are not well determined or described by crystallographic methods based on long-range average structural models. The room temperature (RT) structure of the Bi perovskite Bi2Mn_(4/3)Ni_(2/3)O6 has previously been modeled as a locally polar structure where polarization is suppressed by a long-range incommensurate antiferroelectric modulation. In this study we investigate the short-range local structure of Bi2Mn_(4/3)Ni_(2/3)O6, determined through reverse Monte Carlo (RMC) modeling of neutron total scattering data, and compare the results with the long-range incommensurate structure description. While the incommensurate structure has equivalent B site environments for Mn and Ni, the local structure displays a significantly Jahn—Teller distorted environment for Mn~(3+). The local structure displays the rock-salt-type Mn/Ni ordering of the related Bi2MnNiO6 high pressure phase, as opposed to Mn/Ni clustering observed in the long-range average incommensurate model. RMC modeling reveals short-range ferroelectric correlations between Bi~+ cations, giving rise to polar regions that are quantified for the first time as existing within a distance of approximately 12 A. These local correlations persist in the commensurate high temperature (HT) phase, where the long-range average structure is nonpolar. The local structure thus provides information about cation ordering and B site structural flexibility that may stabilize Bi~(3+) on the A site of the perovskite structure and reveals the extent of the local polar regions created by this cation.
机译:材料的功能特性可能源自局部结构特征,这些特征不能通过基于远程平均结构模型的晶体学方法很好地确定或描述。钙钛矿型Bi2Mn_(4/3)Ni_(2/3)O6的室温(RT)结构先前已建模为局部极性结构,其中极化通过远距离不相称的反铁电调制得到抑制。在这项研究中,我们研究了Bi2Mn_(4/3)Ni_(2/3)O6的短程局部结构,该结构是通过中子总散射数据的反向蒙特卡洛(RMC)建模确定的,并将结果与​​长程比较结构描述不相称。尽管不相称的结构具有与Mn和Ni相当的B位环境,但局部结构却显示出Mn〜(3+)明显的Jahn-Teller畸变环境。局部结构显示了相关Bi2MnNiO6高压相的岩盐型Mn / Ni有序,这与在远程平均不等价模型中观察到的Mn / Ni团簇相反。 RMC模型揭示了Bi〜+阳离子之间的短距离铁电相关性,从而产生了极性区域,该区域在大约12 A的距离内首次存在。这些局部相关性在相称的高温(HT)相中持续存在,远程平均结构是非极性的。因此,局部结构提供了关于阳离子有序性和B位结构柔性的信息,其可以使钙钛矿结构的A位上的Bi〜(3+)稳定,并揭示了由该阳离子产生的局部极性区域的程度。

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