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MnF中压力诱导结构相变的第一性原理研究

First-principles study of pressure-induced structural phase transitions in MnF.

作者信息

López-Moreno S, Romero A H, Mejía-López J, Muñoz A

机构信息

CONACYT - Centre for Corrosion Research, Autonomous University of Campeche, Av. Héroe de Nacozari 480, Campeche 24070, Mexico.

Physics Department, West Virginia University, Morgantown, WV 26506-6315, USA and Facultad de Ingenieria, Benemerita Universidad Autonoma de Puebla, 72570 Puebla, Pue., Mexico.

出版信息

Phys Chem Chem Phys. 2016 Dec 7;18(48):33250-33263. doi: 10.1039/c6cp05467f.

Abstract

In this work we report a complete structural and magnetic characterization of crystalline MnF under pressure obtained using first principle calculations. Density functional theory was used as the theoretical framework, within the generalized gradient approximation plus the Hubbard formalism (GGA+U) necessary to describe the strong correlations present in this material. The vibrational, the magnetic exchange couplings and the structural characterization of MnF in the rutile ground state structure and potential high pressure phases are reported. The quasiharmonic approximation has been used to obtain the free energy, which at the same time is used to evaluate the different structural transitions at 300 K. Based on previous theoretical and experimental studies on AF compounds, ten different structural candidates were considered for the high pressure regime, which led us to propose a path for the MnF structural transitions under pressure. As experimental pressure settings can lead to non-hydrostatic conditions, we consider hydrostatic and non-hydrostatic strains in our calculations. According to our results we found the following sequence for the pressure-driven structural phase transition in MnF: rutile (P4/mnm) → α-PbO-type (Pbcn) → dist. HP PdF-type (Pbca) → dist. fluorite (I4/mmm) → cotunnite (Pnma). This structural path is correlated with other phase transitions reported on other metal rutile fluorides. In particular, we found that our proposed structural phase transition sequence offers an explanation of the different paths observed in the literature by taking into account the role of the hydrostatic conditions. In order to get a deep understanding of the modifications of MnF under pressure, we have analyzed the pressure evolution of the structural, vibrational, electronic, and magnetic properties for rutile and for each of the high pressure phases.

摘要

在这项工作中,我们报告了通过第一性原理计算得到的受压结晶态MnF的完整结构和磁性特征。密度泛函理论被用作理论框架,采用广义梯度近似加上哈伯德形式(GGA+U)来描述该材料中存在的强关联。报告了金红石基态结构和潜在高压相中的MnF的振动、磁交换耦合和结构特征。采用准谐近似来获得自由能,该自由能同时用于评估300K时的不同结构转变。基于先前对AF化合物的理论和实验研究,考虑了高压区域的十种不同结构候选物,这使我们提出了MnF在压力下的结构转变路径。由于实验压力设置可能导致非静水条件,我们在计算中考虑了静水和非静水应变。根据我们的结果,我们发现MnF中压力驱动的结构相变顺序如下:金红石(P4/mnm)→α-PbO型(Pbcn)→畸变的高压PdF型(Pbca)→畸变萤石(I4/mmm)→方铅矿(Pnma)。这种结构路径与其他金属金红石氟化物报道的其他相变相关。特别是,我们发现我们提出的结构相变序列通过考虑静水条件的作用,对文献中观察到的不同路径提供了解释。为了深入了解MnF在压力下的变化,我们分析了金红石和每个高压相的结构、振动、电子和磁性性质的压力演化。

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