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稀土镍酸盐中的莫特转变和磁性及其在 X 射线散射中的指纹。

Mott Transition and Magnetism in Rare Earth Nickelates and its Fingerprint on the X-ray Scattering.

机构信息

Department of Physics and Astronomy, Rutgers University, Piscataway, NJ, 08854, United States.

出版信息

Sci Rep. 2017 Sep 4;7(1):10375. doi: 10.1038/s41598-017-10374-2.

Abstract

The metal-insulator transition (MIT) remains among the most thoroughly studied phenomena in solid state physics, but the complexity of the phenomena, which usually involves cooperation of many degrees of freedom including orbitals, fluctuating local moments, magnetism, and the crystal structure, have resisted predictive ab-initio treatment. Here we develop ab-initio theoretical method for correlated electron materials, based on Dynamical Mean Field Theory, which can predict the change of the crystal structure across the MIT at finite temperature. This allows us to study the coupling between electronic, magnetic and orbital degrees of freedom with the crystal structure across the MIT in rare-earth nickelates. We predict the electronic free energy profile of the competing states, and the theoretical magnetic ground state configuration, which is in agreement with neutron scattering data, but is different from the magnetic models proposed before. The resonant elastic X-ray response at the K-edge, which was argued to be a probe of the charge order, is theoretically modelled within the Dynamical Mean Field Theory, including the core-hole interaction. We show that the line-shape of the measured resonant elastic X-ray response can be explained with the "site-selective" Mott scenario without real charge order on Ni sites.

摘要

金属-绝缘体转变(MIT)仍然是固态物理学中研究最透彻的现象之一,但该现象的复杂性,通常涉及到许多自由度的协同作用,包括轨道、局部磁矩的涨落、磁性和晶体结构,这使得其难以进行预测性的从头计算处理。在这里,我们开发了一种基于动态平均场理论的关联电子材料的从头计算理论方法,该方法可以预测有限温度下 MIT 时晶体结构的变化。这使我们能够研究稀土地镍酸盐中 MIT 时电子、磁性和轨道自由度与晶体结构之间的耦合。我们预测了竞争状态的电子自由能分布,以及与中子散射数据一致的理论磁性基态构型,但与之前提出的磁性模型不同。在动态平均场理论中,我们对 K 边的共振弹性 X 射线响应进行了理论建模,包括了芯能级相互作用。我们表明,测量的共振弹性 X 射线响应的线形状可以用“局域选择性”莫特情景来解释,而不需要 Ni 位置上的真实电荷有序。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4215/5583322/7158c05700ba/41598_2017_10374_Fig1_HTML.jpg

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