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Direct 3D mapping of the Fermi surface and Fermi velocity

机译:费米表面和费米速度的直接3D映射

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We performed a full mapping of the bulk electronic structure including the Fermi surface and Fermi-velocity distribution v_F(k_F) of tungsten. The 4D spectral function p(E_B; k) in the entire bulk Brillouin zone and 6 eV binding-energy (E_B) interval was acquired in ~3 h thanks to a new multidimensional photoemission data-recording technique (combining full-field k-microscopy with time-of-flight parallel energy recording) and the high brilliance of the soft X-rays used. A direct comparison of bulk and surface spectral functions (taken at low photon energies) reveals a time-reversal-invariant surface state in a local bandgap in the (110)-projected bulk band structure. The surface state connects hole and electron pockets that would otherwise be separated by an indirect local bandgap. We confirmed its Dirac-like spin texture by spin-filtered momentum imaging. The measured 4D data array enables extraction of the 3D dispersion of all bands, all energy isosurfaces, electron velocities, hole or electron conductivity, effective mass and inner potential by simple algorithms without approximations. The high-Z bcc metals with large spin-orbit-induced bandgaps are discussed as candidates for topologically non-trivial surface states.
机译:我们对包括费米表面和钨的费米速度分布v_F(k_F)的体电子结构进行了完整的映射。得益于一种新的多维光发射数据记录技术(结合全视野k显微镜),在约3小时内获得了整个布里渊区的4D光谱函数p(E_B; k)和6 eV结合能(E_B)区间。具有飞行时间平行能量记录)和所用软X射线的高亮度。直接比较体和表面光谱函数(在低光子能量下拍摄)揭示了(110)投影体带结构中局部带隙的时间反转不变表面状态。表面状态连接空穴和电子袋,否则它们将被间接的局部带隙分开。我们通过自旋滤波动量成像确认了其类似Dirac的自旋纹理。所测量的4D数据阵列可通过简单的算法(无需近​​似值)提取所有波段,所有能量等值面,电子速度,空穴或电子电导率,有效质量和内部电势的3D色散。具有大自旋轨道诱导的带隙的高Z bcc金属被讨论为拓扑非平凡的表面态的候选。

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  • 来源
    《Nature Materials》 |2017年第6期|615-621|共7页
  • 作者单位

    Institut fuer Physik, Johannes Gutenberg-Universitaet, Staudinger Weg 7, 55128 Mainz, Germany;

    Institut fuer Physik, Johannes Gutenberg-Universitaet, Staudinger Weg 7, 55128 Mainz, Germany;

    Institut fuer Physik, Johannes Gutenberg-Universitaet, Staudinger Weg 7, 55128 Mainz, Germany;

    Institut fuer Physik, Johannes Gutenberg-Universitaet, Staudinger Weg 7, 55128 Mainz, Germany,DESY Photon Science, Notkestrasse 85, 22607 Hamburg,Germany;

    Institut fuer Physik, Johannes Gutenberg-Universitaet, Staudinger Weg 7, 55128 Mainz, Germany;

    Surface Concept GmbH, Am Saegewerk 23a, 55124 Mainz, Germany;

    Department of Bioengineering, Imperial College London, SouthKensington Campus, London SW7 2AZ, UK;

    Universitaet Wuerzburg, Experimentelle Physik VII, 97074 Wuerzburg, Germany;

    Universitaet Wuerzburg, Experimentelle Physik VII, 97074 Wuerzburg, Germany;

    Universitaet Wuerzburg, Experimentelle Physik VII, 97074 Wuerzburg, Germany;

    Universitaet Wuerzburg, Experimentelle Physik VII, 97074 Wuerzburg, Germany;

    Laboratorium fuer Festkoerperphysik, ETH Zuerich, Otto-Stern-Weg 1, 8093 Zuerich, Switzerland;

    Laboratorium fuer Festkoerperphysik, ETH Zuerich, Otto-Stern-Weg 1, 8093 Zuerich, Switzerland;

    DESY Photon Science, Notkestrasse 85, 22607 Hamburg,Germany;

    DESY Photon Science, Notkestrasse 85, 22607 Hamburg,Germany,Physics Department and Center for Free-Electron Laser Science, Universitaet Hamburg, Luruper Chaussee 149, 22761 Hamburg, Germany;

    Institut fuer Physik, Johannes Gutenberg-Universitaet, Staudinger Weg 7, 55128 Mainz, Germany;

    Institut fuer Physik, Johannes Gutenberg-Universitaet, Staudinger Weg 7, 55128 Mainz, Germany;

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