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压力下FeO中的Verwey型电荷有序和位点选择性莫特转变

Verwey-Type Charge Ordering and Site-Selective Mott Transition in FeO under Pressure.

作者信息

Layek Samar, Greenberg Eran, Chariton Stella, Bykov Maxim, Bykova Elena, Trots Dmytro M, Kurnosov Alexander V, Chuvashova Irina, Ovsyannikov Sergey V, Leonov Ivan, Rozenberg Gregory Kh

机构信息

School of Physics and Astronomy, Tel Aviv University, 69978 Tel Aviv, Israel.

Department of Physics, School of Engineering, University of Petroleum and Energy Studies (UPES), Dehradun, Uttarakhand 248007, India.

出版信息

J Am Chem Soc. 2022 Jun 15;144(23):10259-10269. doi: 10.1021/jacs.2c00895. Epub 2022 Jun 1.

Abstract

The metal-insulator transition driven by electronic correlations is one of the most fundamental concepts in condensed matter. In mixed-valence compounds, this transition is often accompanied by charge ordering (CO), resulting in the emergence of complex phases and unusual behaviors. The famous example is the archetypal mixed-valence mineral magnetite, FeO, exhibiting a complex charge-ordering below the Verwey transition, whose nature has been a subject of long-time debates. In our study, using high-resolution X-ray diffraction supplemented by resistance measurements and DFT+DMFT calculations, the electronic, magnetic, and structural properties of recently synthesized mixed-valence FeO are investigated under pressure to ∼100 GPa. Our calculations, consistent with experiment, reveal that at ambient conditions FeO is a narrow-gap insulator characterized by the original Verwey-type CO. Under pressure FeO undergoes a series of electronic and magnetic-state transitions with an unusual compressional behavior above ∼50 GPa. A site-dependent collapse of local magnetic moments is followed by the site-selective insulator-to-metal transition at ∼84 GPa, occurring at the octahedral Fe sites. This phase transition is accompanied by a 2+ to 3+ valence change of the prismatic Fe ions and collapse of CO. We provide a microscopic explanation of the complex charge ordering in FeO which "unifies" it with the behavior of two archetypal examples of charge- or bond-ordered materials, magnetite and rare-earth nickelates (RNiO). We find that at low temperatures the Verwey-type CO competes with the "trimeron"/"dimeron" charge ordered states, allowing for pressure/temperature tuning of charge ordering. Summing up the available data, we present the pressure-temperature phase diagram of FeO.

摘要

由电子关联驱动的金属-绝缘体转变是凝聚态物质中最基本的概念之一。在混合价化合物中,这种转变通常伴随着电荷有序化(CO),导致出现复杂的相和异常行为。著名的例子是典型的混合价矿物磁铁矿Fe₃O₄,在韦尔韦转变温度以下表现出复杂的电荷有序化,其本质长期以来一直是争论的焦点。在我们的研究中,通过补充电阻测量和DFT+DMFT计算的高分辨率X射线衍射,研究了最近合成的混合价Fe₃O₄在高达约100 GPa压力下的电子、磁性和结构性质。我们的计算与实验一致,表明在环境条件下Fe₃O₄是一种窄带隙绝缘体,其特征是原始的韦尔韦型CO。在压力下,Fe₃O₄经历一系列电子和磁态转变,在约50 GPa以上具有异常的压缩行为。局部磁矩的位点依赖性崩塌之后是在约84 GPa时发生在八面体Fe位点的位点选择性绝缘体到金属的转变。这个相变伴随着棱柱形Fe离子从2+到3+的价态变化和CO的崩塌。我们对Fe₃O₄中复杂的电荷有序化提供了微观解释,将其与电荷或键有序材料的两个典型例子磁铁矿和稀土镍酸盐(RNiO₃)的行为“统一”起来。我们发现,在低温下,韦尔韦型CO与“三聚体”/“二聚体”电荷有序态竞争,从而实现电荷有序化的压力/温度调控。综合现有数据,我们给出了Fe₃O₄的压力-温度相图。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b79b/9204770/12dad15904e4/ja2c00895_0001.jpg

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