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Spin and charge excitations in artificial hole- and electron-doped infinite layer cuprate superconductors

机译:在人造孔和电子掺杂无限层中旋转和电激励铜酸铜超导体

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摘要

The asymmetry between electron and hole doping in high critical-temperature superconducting (HTS) cuprates is key information for the understanding of Cooper pair formation mechanisms. Despite intensive studies on different cuprates, a comprehensive description of related magnetic and charge excitations is still fragmentary. In the present work, artificial cuprates were used to cover the entire phase diagram within the same HTS family. In particular, Cu L_3-edge resonant inelastic x-ray scattering (RIXS) measurements were performed on artificial n- and p-type infinite layer (IL) epitaxial films. Beside several similarities, RIXS spectra show noticeable differences in the evolution, with doping level, of magnetic and charge intensity and damping. Compatible trends can be found in spectra measured on bulk cuprates, as well as in theoretical calculations of the spin dynamical structure factor S(q,ω). The findings give a deeper insight into the evolution of collective excitations across the cuprate phase diagram, and on underlying general features, only connected to the doping type. Moreover, they pave the way to the exploration of general properties of HTS physics over a broad range of conditions, by means of artificial compounds not constrained by the thermodynamic limitations governing the chemical stability of bulk materials.
机译:在高临界温度超导(HTS)铜中掺杂的电子和孔之间的不对称是理解Cooper对地层机制的关键信息。尽管对不同铜酸盐替铜的密集研究,但相关磁​​性和电荷激发的综合描述仍然是零碎的。在本作工作中,使用人造铜替代物用于覆盖同一HTS系列内的整个相图。特别地,在人造N-和P型无限层(IL)外延膜上进行Cu L_3边缘共振无弹性X射线散射(RIX)测量。除了几个相似之处旁边,RIXS光谱显示出磁力和电荷强度和阻尼的掺杂水平的演化中显着差异。在散装铜蛋白的光谱中可以找到兼容趋势,以及旋转动态结构因子S(Q,ω)的理论计算。该调查结果深入了解铜替换相图的集体激励的演变,以及基础的一般特征,仅连接到掺杂类型。此外,它们通过不受管散装材料的化学稳定性的热力学限制的人工化合物来探讨HTS物理学的一般性质探索的方式。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第12期|115117.1-115117.8|共8页
  • 作者单位

    CNR-SPIN and Dipartimento di Fisica Politecnico di Milano piazza Leonardo Da Vinci 32 Milano I-20133 Italy;

    CNR-SPIN and Dipartimento di Fisica Politecnico di Milano piazza Leonardo Da Vinci 32 Milano I-20133 Italy;

    CNR-SPIN and Dipartimento di Ingegneria dell’Informazione Ingegneria Elettrica e Matematica Applicata-DIEM Universita di Salerno I-84084 Fisciano (SA) Italy Max-Planck-Institut fuer Festkoerperforschung Heisenbergstrasse 1 D-70569 Stuttgart Germany;

    CNR-SPIN and Dipartimento di Ingegneria Civile e Ingegneria Informatica Universita di Roma Tor Vergata Via del Politecnico 1 I-00133 Roma Italy;

    CNR-SPIN and Dipartimento di Ingegneria Civile e Ingegneria Informatica Universita di Roma Tor Vergata Via del Politecnico 1 I-00133 Roma Italy;

    European Synchrotron Radiation Facility 71 Avenue des Martyrs Grenoble F-38043 France;

    Stanford Institute for Materials and Energy Science SLAC National Accelerator Laboratory and Stanford University Menlo Park California 94025 USA;

    CNR-SPIN and Dipartimento di Fisica Politecnico di Milano piazza Leonardo Da Vinci 32 Milano I-20133 Italy National Synchrotron Light Source Ⅱ Brookhaven National Laboratory Upton New York 11973 USA;

    European Synchrotron Radiation Facility 71 Avenue des Martyrs Grenoble F-38043 France;

    Stanford Institute for Materials and Energy Science SLAC National Accelerator Laboratory and Stanford University Menlo Park California 94025 USA;

    Dipartimento di Ingegneria Industriale-DIIN Universita di Salerno and CNR-SPIN I-84084 Fisciano (SA) Italy;

    Department of Materials Science and Engineering Cornell University and Kavli Institute at Cornell for Nanoscale Science Ithaca New York 14853 USA;

    CNR-SPIN and Dipartimento di Ingegneria Civile e Ingegneria Informatica Universita di Roma Tor Vergata Via del Politecnico 1 I-00133 Roma Italy;

    CNR-SPIN and Dipartimento di Ingegneria Civile e Ingegneria Informatica Universita di Roma Tor Vergata Via del Politecnico 1 I-00133 Roma Italy;

    CNR-SPIN and Dipartimento di Fisica Politecnico di Milano piazza Leonardo Da Vinci 32 Milano I-20133 Italy;

    Stanford Institute for Materials and Energy Science SLAC National Accelerator Laboratory and Stanford University Menlo Park California 94025 USA;

    Dipartimento di Ingegneria Industriale-DIIN Universita di Salerno and CNR-SPIN I-84084 Fisciano (SA) Italy;

    CNR-SPIN and Dipartimento di Fisica Politecnico di Milano piazza Leonardo Da Vinci 32 Milano I-20133 Italy;

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