论文标题

平面Cu和o NMR以及库酸酯超导体的伪gap

Planar Cu and O NMR and the Pseudogap of Cuprate Superconductors

论文作者

Avramovska, Marija, Nachtigal, Jakob, Tsankov, Stefan, Haase, Jürgen

论文摘要

最近,对Cuprate高温超导体的所有可用平面氧移位和松弛数据的分析表明,可以通过从所有丘比特人共有的金属状态的金属密度来理解数据。它在费米表面携带掺杂但独立的pseudogap,这在特定的热量中也导致与正常金属行为的偏差。在这里,提出了对所有数据(包括平面Cu)的更连贯,无偏见的评估,并讨论了后果,因为在O数据之前收集并分析了平面CU数据。主要发现是平面Cu在外部磁场的一个方向上移动很大程度上是从同一状态和伪随身的。这解释了最近所述的抑制作用,这导致了科林加关系的失败,而与最初提出的抗磁性自旋波动相比增强了弛豫。但是,仍然需要第二个旋转组件与Cu $ 3D(X^2-Y^2)$孔相关联,以解释复杂的Cu移动各向异性和家庭依赖性。此外,有人认为,据报道最近据报道的平面铜松弛对丘比特人无处不在,必须与状态的通用密度和第二个旋转成分有关,同时不受简单的pseudogap的影响。因此,尽管在平面CU数据中也发现了具有伪随的状态状态的通用金属密度,但仍然需要一个更精细的场景来避免平面O。

Recently, an analysis of all available planar oxygen shift and relaxation data for the cuprate high-temperature superconductors showed that the data can be understood with a simple spin susceptibility from a metallic density of states common to all cuprates. It carries a doping dependent but temperature independent pseudogap at the Fermi surface, which causes the deviations from normal metallic behavior, also in the specific heat. Here, a more coherent, unbiased assessment of all data, including planar Cu, is presented and consequences are discussed, since the planar Cu data were collected and analyzed prior to the O data. The main finding is that the planar Cu shifts for one direction of the external magnetic field largely follow from the same states and pseudogap. This explains the shift suppression stated more recently, which leads to the failure of the Korringa relation in contrast to an enhancement of the relaxation due to antiferromagnetic spin fluctuations originally proposed. However, there is still the need for a second spin component that appears to be associated with the Cu $3d(x^2-y^2)$ hole to explain the complex Cu shift anisotropy and family dependence. Furthermore, it is argued that the planar Cu relaxation which was reported recently to be rather ubiquitous for the cuprates, must be related to this universal density of states and the second spin component, while not being affected by the simple pseudogap. Thus, while this universal metallic density of states with a pseudogap is also found in the planar Cu data, there is still need for a more elaborate scenario that eludes planar O.

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