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首页> 外文期刊>Physical Review. B, Condensed Matter >Orbital and spin moments in the ferromagnetic superconductor URhGe by x-ray magnetic circular dichroism
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Orbital and spin moments in the ferromagnetic superconductor URhGe by x-ray magnetic circular dichroism

机译:由X射线磁圆形二色二色性轨道和旋转矩的旋转力矩中的铁磁超导体urhge

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摘要

The ferromagnetic superconductor URhGe has been investigated by high field magnetic circular dichroism (XMCD) at the U M_(4,5), Rh L_(2,3), and Ge K edges at 2.1 K and at applied fields up to 17 T. The XMCD performed at the M4,5 absorption edges allows us to determine the spectroscopic branching ratio and the 5f electron contribution to the valence spin-orbit interaction. Combination with polarized neutron diffraction results allows us to derive the individual U orbital and spin moments and the magnetic-dipole contribution . There is no evidence for any change of the orbital-to-spin moment ratios across the spin reorientation transition at H_R = 12 T, when the field is applied along the initial hard b axis.We also confirm that the magnetism of URhGe is dominated by U, with the contribution of Rh representing only about 10% of the macroscopic moment. The orbital and spin moments at the Rh site are found to be parallel to each other and parallel to the macroscopic magnetization, but an unexpectedly large orbital-to-spin moment ratio is observed. The XMCD at the Ge K edge reveals the presence of a small induced Ge 4p orbital moment, parallel to the macroscopic magnetization. The results are discussed against predictions of the electronic band structure calculations by the density functional theory plus Coulomb U, including spin-orbit coupling (DFT + U + SOC).
机译:在U M_(4,5),RH L_(2,3)处的高场磁圆形二色性(XMCD)研究了铁磁超导体urhge,并且在2.1k和施加的场上的GE K边缘高达17吨。在M4,5吸收边缘执行的XMCD允许我们确定光谱分支比和5F电子对价旋转轨道相互作用的贡献。与偏振中子衍射结果的组合使我们能够衍生各自的U轨道和旋转力矩和磁性偶极贡献。当沿着初始硬B轴施加该场时,在H_R = 12T的旋转重转换过渡跨越旋转旋转力矩比的任何变化没有证据。我们还证实URHGE的磁性由u,Rh的贡献仅代表宏观时刻的约10%。 RH位点的轨道和旋转矩被发现彼此平行并平行于宏观磁化,但观察到意外的大规模轨道旋转力矩比。 GE K边缘处的XMCD显示出小诱导的GE 4P轨道片段,平行于宏观磁化。通过密度泛函理论加库仑U的电子频带结构计算的预测来讨论结果,包括旋转轨道耦合(DFT + U + SoC)。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第24期|235147.1-235147.10|共10页
  • 作者单位

    European Synchrotron Radiation Facility (ESRF) BP. 220 F-38043 Grenoble cedex France;

    Univ. Grenoble Alpes Commissariat a l'Energie Atomique et aux Energies Alternatives (CEA) Institut Nanosciences et Cryogenie (INAC)-PHELIQS F-38000 Grenoble France;

    Univ. Grenoble Alpes Commissariat a l'Energie Atomique et aux Energies Alternatives (CEA) Institut Nanosciences et Cryogenie (INAC)-PHELIQS F-38000 Grenoble France;

    Univ. Grenoble Alpes Commissariat a l'Energie Atomique et aux Energies Alternatives (CEA) Institut Nanosciences et Cryogenie (INAC)-PHELIQS F-38000 Grenoble France Institute for Materials Research Tohoku University Oarai Ibaraki 311–1313 Japan;

    Institute of Physics ASCR Na Slovance 2 182 21 Prague 8 Czech Republic;

    European Synchrotron Radiation Facility (ESRF) BP. 220 F-38043 Grenoble cedex France;

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