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Many-body effects in x-ray absorption and magnetic circular dichroism spectra within the LSDA+DMFT framework

机译:LSDA + DMFT框架内X射线吸收和圆二色性的多体效应

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The theoretical description of photoemission spectra of transition metals was greatly improved recently by accounting for the correlations between the d electrons within the local spin-density approximation (LSDA) plus dynamical mean-field theory (DMFT). We assess the improvement of the LSDA+DMFT over the plain LSDA in x-ray absorption spectroscopy, which—unlike the photoemission spectroscopy—is probing unocccupied electronic states. By investigating the L23 edge x-ray absorption near-edge structure (XANES) and x-ray magnetic circular dichroism (XMCD) of Fe, Co, and Ni, we find that the LSDA+DMFT improves the LSDA results, in particular concerning the asymmetry of the L3 white line. Differences with respect to the experiment, nevertheless, remain—particularly concerning the ratio of the intensities of the L3 and L2 peaks. The changes in the XMCD peak intensities invoked by the use of the LSDA+DMFT are a consequence of the improved description of the orbital polarization and are consistent with the XMCD sum rules. Accounting for the core hole within the final-state approximation does not generally improve the results. This indicates that to get more accurate JL23 edge XANES and XMCD spectra, one has to treat the core hole beyond the final-state approximation.
机译:最近,通过考虑局部自旋密度近似(LSDA)和动态平均场理论(DMFT)中d电子之间的相关性,极大地改进了过渡金属的光发射光谱的理论描述。我们评估了在X射线吸收光谱法中与普通LSDA相比,LSDA + DMFT的改进,与光发射光谱法不同,该方法正在探测未占据的电子态。通过研究Fe,Co和Ni的L23边缘X射线吸收近边缘结构(XANES)和X射线磁圆二向色性(XMCD),我们发现LSDA + DMFT改善了LSDA结果,特别是关于L3白线的不对称性。尽管如此,仍然存在与实验有关的差异,特别是关于L3和L2峰强度的比率。通过使用LSDA + DMFT引起的XMCD峰值强度的变化是对轨道极化的改进描述的结果,并且与XMCD和规则一致。在最终状态近似中考虑芯孔通常不会改善结果。这表明,要获得更准确的JL23边缘XANES和XMCD光谱,必须处理超出最终状态近似值的岩心孔。

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  • 来源
    《Physical review》 |2011年第11期|p.133-141|共9页
  • 作者单位

    Institute of Physics of the AS CR v. v. L, Cukrovarnickd 10, CZ-162 53 Prague, Czech Republic;

    Universitdt Munchen, Department Chemie, Butenandtstr. 5-13 E, D-81377 Mtinchen, Germany;

    Stanford Institute for Material and Energy Science, SLAC National Accelerator Laboratory, Menlo Park, California, USA;

    Universitdt Duisburg-Essen, Fakultatfur Physik and Center for Nanointegration Duisburg-Essen (CeNIDE), Lotharstr. 1,DE-47048 Duisburg, Germany;

    Universitdt Munchen, Department Chemie, Butenandtstr. 5-13 E, D-81377 Mtinchen, Germany;

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