论文标题

电子掺杂的库酸酯超导体中电子的各向异性敷料

Anisotropic dressing of electrons in electron-doped cuprate superconductors

论文作者

Tan, Shuning, Liu, Yiqun, Mou, Yingping, Feng, Shiping

论文摘要

最近的实验表明,由于电子和孔掺杂的库层超导体的相位图之间存在差异,因此存在显着的可能性,而这些方面也应反映在电子敷料中。在这里,基于动力学驱动的超导性,研究了电子掺杂的铜酸盐超导体的相图和电子各向异性敷料的相关外来特征。结果表明,尽管在电子掺杂侧的优化TC远小于掺杂孔的情况下,但电子和孔掺杂的铜层超导体在超导穹顶的兴奋剂范围内相互相似,表明没有电子和孔 - 孔 - 孔 - 孔 - 孔 - 甲酸和蛋白杯的相图之间的差异。特别是,由于电子与强分散旋转激发的耦合,电子的各向异性敷料导致电子表面被截断,以形成以节点区域为中心的断开的Fermi弧。同样,准颗粒激发谱的峰值浸入结构中的倾角与准粒子散射速率的相应峰直接相关,而分散扭结始终伴随着总自我能量的相应拐点,就像在峰值 - 泵浦结构和分散量kink in the less in poless中的相应拐点。该理论还预测,正常和异常的自我能力都表现出良好的低能峰结构。

The recent experiments revealed a remarkable possibility for the absence of the disparity between the phase diagrams of the electron- and hole-doped cuprate superconductors, while such an aspect should be also reflected in the dressing of the electrons. Here the phase diagram of the electron-doped cuprate superconductors and the related exotic features of the anisotropic dressing of the electrons are studied based on the kinetic-energy driven superconductivity. It is shown that although the optimized Tc in the electron-doped side is much smaller than that in the hole-doped case, the electron- and hole-doped cuprate superconductors rather resemble each other in the doping range of the superconducting dome, indicating an absence of the disparity between the phase diagrams of the electron- and hole-doped cuprate superconductors. In particular, the anisotropic dressing of the electrons due to the strong electron's coupling to a strongly dispersive spin excitation leads to that the electron Fermi surface is truncated to form the disconnected Fermi arcs centered around the nodal region. Concomitantly, the dip in the peak-dip-hump structure of the quasiparticle excitation spectrum is directly associated with the corresponding peak in the quasiparticle scattering rate, while the dispersion kink is always accompanied by the corresponding inflection point in the total self-energy, as the dip in the peak-dip-hump structure and dispersion kink in the hole-doped counterparts. The theory also predicts that both the normal and anomalous self-energies exhibit the well-pronounced low-energy peak-structures.

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