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首页> 外文期刊>Physical review >Magnetic order without tetragonal-symmetry-breaking in iron arsenides: Microscopic mechanism and spin-wave spectrum
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Magnetic order without tetragonal-symmetry-breaking in iron arsenides: Microscopic mechanism and spin-wave spectrum

机译:砷化铁中没有四方对称破坏的磁阶:微观机制和自旋波谱

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摘要

Most iron-based superconductors undergo a transition to a magnetically ordered state characterized by staggered stripes of parallel spins. With ordering vectors (π,0) or (0,π), this magnetic state breaks the high-temperature tetragonal symmetry of the system, which is manifested by a splitting of the lattice Bragg peaks. Remarkably, recent experiments in hole-doped iron arsenides reported an ordered state that displays magnetic Bragg peaks at (π,0) and (0,π) but remains tetragonal. Despite being inconsistent with a magnetic stripe configuration, this unusual magnetic phase can be described in terms of a double-Q magnetic structure consisting of an equal-weight superposition of the ordering vectors (π,0) and (0,π). Here we show that a noncollinear double-Q magnetic configuration, dubbed orthomagnetic, arises naturally within an itinerant three-band microscopic model for the iron pnictides. In particular, we find that strong deviations from perfect nesting and residual interactions between the electron pockets favor the orthomagnetic over the stripe magnetic state. Using an effective low-energy model, we also calculate the spin-wave spectrum of the orthomagnetic state. In contrast to the stripe state, there are three Goldstone modes, manifested in all diagonal and one off-diagonal components of the spin-spin correlation function. The total magnetic structure factor displays two anisotropic gapless spin-wave branches emerging from both (π,0) and (0,π) momenta, in contrast to the case of domains of stripe order, where only one gapless spin-wave branch emerges from each momentum. We propose that these unique features of the orthomagnetic state can be used to unambiguously distinguish it from the stripe state via neutron scattering experiments, and discuss the implications of its existence for the nature of the magnetism of the iron arsenides.
机译:大多数铁基超导体经历过渡到以有序自旋的交错条纹为特征的磁有序状态。在有序向量(π,0)或(0,π)的情况下,这种磁态破坏了系统的高温四边形对称性,这一点可通过晶格布拉格峰的分裂来体现。值得注意的是,最近在掺杂空穴的砷化铁中进行的实验报告了一种有序状态,该状态在(π,0)和(0,π)处显示出布拉格磁峰,但仍保持四边形。尽管与磁条配置不一致,但是可以使用双Q磁结构来描述此异常磁相,该双Q磁结构由等分量的有序向量(π,0)和(0,π)叠加而成。在这里,我们显示了一个非共线的双Q磁性配置,被称为正磁性,自然地出现在铁三肽的流动三波段微观模型中。特别是,我们发现,与完美嵌套和电子袋之间的残余相互作用之间的强偏差有利于正磁而不是条带磁态。使用有效的低能量模型,我们还计算了正磁态的自旋波谱。与条纹状态相反,自旋-自旋相关函数的所有对角线分量和一个非对角线分量都表现出三种戈德斯通模式。总磁结构因子显示出两个分别从(π,0)和(0,π)动量出现的各向异性无隙自旋波分支,这与条带畴的情况相反,在条带畴中,只有一个无隙自旋波分支从每个动量。我们提出,通过中子散射实验,可以利用正磁性态的这些独特特征将其与条带态明确地区分开,并讨论其存在对砷化铁磁性的影响。

著录项

  • 来源
    《Physical review》 |2015年第2期|024401.1-024401.12|共12页
  • 作者单位

    School of Physics and Astronomy, University of Minnesota, Minneapolis, Minnesota 55455, USA;

    School of Physics and Astronomy, University of Minnesota, Minneapolis, Minnesota 55455, USA;

    School of Physics and Astronomy, University of Minnesota, Minneapolis, Minnesota 55455, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    magnetic properties;

    机译:磁性;

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