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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Phase stability and large in-plane resistivity anisotropy in the 112-type iron-based superconductor Ca_(1-x)La_xFeAs_2
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Phase stability and large in-plane resistivity anisotropy in the 112-type iron-based superconductor Ca_(1-x)La_xFeAs_2

机译:112型铁基超导体Ca_(1-x)La_xFeAs_2的相稳定性和大的面内电阻率各向异性

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摘要

The recently discovered high-T_c superconductor Ca_(1-x)La_xFeAs_2 is a unique compound not only because of its low-symmetry crystal structure but also because of its electronic structure, which hosts Dirac-like metallic bands resulting from (spacer) zigzag As chains. We present a comprehensive first-principles theoretical study of the electronic and crystal structures of Ca_(1-x)La_xFeAs_2. After discussing the connection between the crystal structure of the 112 family, which Ca_(1-x)La_xFeAs_2 is a member of, with the other known structures of Fe pnictide superconductors, we check the thermodynamic phase stability of CaFeAs2, and similar hyphothetical compounds SrFeAs2 and BaFeAs2 which, we find, are slightly higher in energy. We calculate the optical conductivity of Ca_(1-x)La_xFeAs_2 using the DFT+DMFT method and predict a large in-plane resistivity anisotropy in the normal phase, which does not originate from electronic nematicity, but is enhanced by the electronic correlations. In particular, we predict a 0.34 eV peak in the yy component of the optical conductivity of the 30% La-doped compound, which corresponds to coherent interband transitions within a fast-dispersing band arising from the zigzag As chains, which are unique to this compound. We also study the Landau free energy for Ca_(1-x)La_xFeAs_2 including the order parameter relevant for the nematic transition and find that the free energy does not have any extra terms that could induce ferro-orbital order. This explains why the presence of As chains does not broaden the nematic transition in Ca_(1-x)La_xFeAs_2.
机译:最近发现的高T_c超导体Ca_(1-x)La_xFeAs_2是一种独特的化合物,不仅因为其低对称的晶体结构,而且还因为其电子结构具有(间隔)之字形As形成的狄拉克样金属带。链。我们目前对Ca_(1-x)La_xFeAs_2的电子和晶体结构进行全面的第一性原理研究。在讨论了Ca_(1-x)La_xFeAs_2所属的112族晶体结构与Fe锡超导体的其他已知结构之间的联系之后,我们检查了CaFeAs2的热力学相稳定性以及类似的假设化合物SrFeAs2我们发现BaFeAs2的能量略高。我们使用DFT + DMFT方法计算Ca_(1-x)La_xFeAs_2的光导率,并预测正相中的大平面内电阻率各向异性,这不是源于电子向列性,而是通过电子相关性得到增强。特别是,我们预测掺有30%La的化合物的光导率yy分量中的0.34 eV峰,这对应于之字形As链在快速分散带内产生的相干带间跃迁,这是其独有的复合。我们还研究了Ca_(1-x)La_xFeAs_2的Landau自由能,其中包括与向列跃迁相关的阶数参数,发现该自由能没有任何额外的项可以诱发铁轨道定序。这解释了为什么As链的存在不会加宽Ca_(1-x)La_xFeAs_2中的向列转变。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第1期|014511.1-014511.13|共13页
  • 作者单位

    Department of Physics and Astronomy, Rutgers University, Piscataway, New Jersey 08854, USA;

    Department of Physics and Astronomy, Rutgers University, Piscataway, New Jersey 08854, USA,Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USA;

    Department of Physics and Astronomy, Rutgers University, Piscataway, New Jersey 08854, USA,Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, New York 11973, USA;

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