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重稀土元素中的磁有序理论:对旋和四自旋相互作用的第一性原理电子起源

Theory of Magnetic Ordering in the Heavy Rare Earths: Ab Initio Electronic Origin of Pair- and Four-Spin Interactions.

作者信息

Mendive-Tapia Eduardo, Staunton Julie B

机构信息

Department of Physics, University of Warwick, Coventry CV4 7AL, United Kingdom.

出版信息

Phys Rev Lett. 2017 May 12;118(19):197202. doi: 10.1103/PhysRevLett.118.197202. Epub 2017 May 11.

DOI:10.1103/PhysRevLett.118.197202
PMID:28548504
Abstract

We describe a disordered local moment theory for long-period magnetic phases and investigate the temperature and magnetic field dependence of the magnetic states in the heavy rare earth elements (HREs), namely, paramagnetic, conical and helical antiferromagnetic (HAFM), fan, and ferromagnetic (FM) states. We obtain a generic HRE magnetic phase diagram which is consequent on the response of the common HRE valence electronic structure to f-electron magnetic moment ordering. The theory directly links the first-order HAFM-FM transition to the loss of Fermi surface nesting, induced by this magnetic ordering, as well as provides a template for analyzing the other phases and exposing where f-electron correlation effects are particularly intricate. Gadolinium, for a range of hexagonal, close-packed lattice constants c and a, is the prototype, described ab initio, and applications to other HREs are made straightforwardly by scaling the effective pair and quartic local moment interactions that emerge naturally from the theory with de Gennes factors and choosing appropriate lanthanide-contracted c and a values.

摘要

我们描述了一种适用于长周期磁相的无序局域矩理论,并研究了重稀土元素(HREs)中磁态的温度和磁场依赖性,即顺磁态、锥形和螺旋反铁磁(HAFM)态、扇形态和铁磁(FM)态。我们得到了一个通用的HRE磁相图,它是由常见的HRE价电子结构对f电子磁矩有序化的响应所导致的。该理论直接将一阶HAFM - FM转变与这种磁有序化引起的费米面嵌套的丧失联系起来,同时也为分析其他相以及揭示f电子关联效应特别复杂的地方提供了一个模板。钆在一系列六方密堆积晶格常数c和a的情况下,是通过从头算描述的原型,通过用德热纳因子对理论中自然出现的有效对相互作用和四次局域矩相互作用进行缩放,并选择合适的镧系收缩c和a值,可直接将其应用于其他HREs。

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Theory of Magnetic Ordering in the Heavy Rare Earths: Ab Initio Electronic Origin of Pair- and Four-Spin Interactions.重稀土元素中的磁有序理论:对旋和四自旋相互作用的第一性原理电子起源
Phys Rev Lett. 2017 May 12;118(19):197202. doi: 10.1103/PhysRevLett.118.197202. Epub 2017 May 11.
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