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Nature Of The Nodal Kink In Angle-resolved Photoemission Spectra Of Cuprate Superconductors

机译:铜酸盐超导体角分辨光发射光谱中节点扭结的性质

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摘要

The experimental finding of an ubiquitous kink in the nodal direction of angle-resolved photoemission spectroscopies of superconducting cuprates has been reproduced theoretically. Our model is built on the Migdal-Eliashberg theory for the electron self-energy within the phonon-coupling scenario. Following this perturbative approach, a numerical evaluation of the bare band dispersion energy in terms of the electron-phonon-coupling parameter λ allows a unified description of the nodal-kink effect. Our study reveals that distinction between λ and the technically defined mass-enhancement parameter λ~* is relevant for the quantitative description of data, as well as for a meaningful interpretation of previous studies. A remarkable agreement between theory and experiment has been achieved for different samples and at different doping levels. The full energy spectrum is covered in the case of LSCO, Bi2212, and overdoped Y123. In the case of underdoped Y123, the model applies to the low-energy region (close to Fermi level).
机译:理论上已经再现了在超导铜酸盐的角分辨光发射光谱的节点方向上普遍存在的扭结的实验发现。我们的模型是基于Migdal-Eliashberg理论建立的,用于声子耦合场景中的电子自能。按照这种摄动方法,根据电子-声子耦合参数λ对裸带色散能量进行数值评估,可以对节点扭结效应进行统一描述。我们的研究表明,λ与技术定义的质量增强参数λ〜*之间的区别与数据的定量描述以及对先前研究的有意义的解释有关。对于不同的样品和不同的掺杂水平,已经在理论和实验之间取得了显着的一致性。 LSCO,Bi2212和过量掺杂的Y123涵盖了整个能谱。在Y123掺杂不足的情况下,该模型适用于低能量区域(接近费米能级)。

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