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Structural and magnetic properties of transition metal substituted BaFe2As2 compounds studied by x-ray and neutron scattering.

机译:通过X射线和中子散射研究了过渡金属取代的BaFe2As2化合物的结构和磁性。

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摘要

The purpose of my dissertation is to understand the structural and magnetic properties of the newly discovered FeAs-based superconductors and the interconnection between superconductivity, antiferromagnetism, and structure. X-ray and neutron scattering techniques are powerful tools to directly observe the structure and magnetism in this system: High-resolution x-ray diffraction, x-ray resonant magnetic scattering, and neutron diffraction measurements have been used. I found that the structural and antiferromagnetic transitions are split in the parent BaFe2As2 compound with second-order structural transition temperature (TS) higher than the first-order AFM transition temperature (TN). Upon substitutions by Co and Rh, which are considered as electron doping, the structural and AFM transition temperatures are suppressed to lower temperature and split further. In contrast to the electron doping, in isoelectronic Ru substitution, the structural and AFM transitions are locked at the same temperature while in the hole doping case, the Mn substitution, the T S and TN occur at the same temperature up to approximately x = 0.102. Above x ≥ 0.11, the orthorhombic distortion is not observed while the AFM signal from the antiferromagnetic propagation vector QAFM of the “stripe” AFM structure remains. X-ray resonant magnetic scattering measurements at the Fe K edge add another example of resonance enhancement at the K edge of 3d element (in this case Fe) and definitely show that no incommensurate magnetic ordering exists in ≤ 5.4% Co substituted BaFe2As2 compounds. Neutron diffraction measurements show that the commensurate-to-incommensurate transition occurs in ≥ 5.6% Co substitution, ≥ 3.5% Ni substitution, but not in any level of Cu substitution. I show that simple electron counting based on rigid-band concepts is invalid. These results suggest that substitutional impurity effects in the Fe plane play a significant role in controlling magnetism and the appearance of superconductivity, with Cu distinguished by enhanced impurity scattering and split-band behavior.
机译:本文的目的是了解新发现的基于FeAs的超导体的结构和磁性,以及超导性,反铁磁性和结构之间的相互联系。 X射线和中子散射技术是直接观察此系统中结构和磁性的强大工具:已使用高分辨率X射线衍射,X射线共振磁散射和中子衍射测量。我发现母体BaFe2As2化合物中的结构转变和反铁磁转变是分开的,其二阶结构转变温度(TS)高于一阶AFM转变温度(TN)。在被视为电子掺杂的Co和Rh取代后,结构和AFM转变温度被抑制到较低的温度并进一步分裂。与电子掺杂相反,在等电子Ru替代中,结构和AFM跃迁被锁定在相同的温度下,而在空穴掺杂情况下,Mn替代,TS和TN在相同的温度下发生,直到大约x = 0.102。大于x≥0.11时,未观察到正交畸变,而来自“条状” AFM结构的反铁磁传播矢量QAFM的AFM信号仍然保留。 Fe K边缘的X射线共振磁散射测量在3d元素(在本例中为Fe)的K边缘增加了共振增强的另一个示例,并且明确表明在≤5.4%的Co取代的BaFe2As2化合物中不存在不相称的磁性。中子衍射测量表明,在不小于5.6%的Co取代,不大于3.5%的Ni取代中出现了相称过渡,但在任何水平的Cu取代中均未发生。我证明了基于刚性带概念的简单电子计数是无效的。这些结果表明,Fe平面中的替代杂质效应在控制磁性和超导电性方面起着重要作用,而Cu以增强的杂质散射和分裂带行为为特征。

著录项

  • 作者

    Kim, Min Gyu.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Chemistry Inorganic.;Engineering Materials Science.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 199 p.
  • 总页数 199
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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