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Explaining the pseudogap through damping and antidamping on the Fermi surface by imaginary spin scattering

机译:通过假想的自旋散射在费米表面上通过阻尼和反阻尼来解释赝隙

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The mechanism of the pseudogap observed in hole-doped cuprates remains one of the central puzzles in condensed matter physics. We analyze this phenomenon via a Feynman-diagrammatic inspection of the Hubbard model. Our approach captures the pivotal interplay between Mott localization and Fermi surface topology beyond weak-coupling spin fluctuations, which would open a spectral gap near hot spots. We show that strong coupling and particle-hole asymmetry trigger a very different mechanism: a large imaginary part of the spin-fermion vertex promotes damping of antinodal fermions and, at the same time, protects the nodal Fermi arcs (antidamping). Our analysis naturally explains puzzling features of the pseudogap observed in experiments, such as Fermi arcs being cut off at the antiferromagnetic zone boundary and the subordinate role of hot spots.
机译:在空穴掺杂铜酸盐中观察到的赝间隙机制仍然是凝聚态物理学的核心难题之一。我们通过对哈伯德模型的费曼图检查来分析这一现象。我们的方法捕捉到了莫特局域化和费米表面拓扑之间的关键相互作用,超越了弱耦合自旋涨落,这将在热点附近打开光谱间隙。我们表明,强耦合和粒子-空穴不对称性触发了一种非常不同的机制:自旋费米子顶点的一个大假想部分促进了反节点费米子的阻尼,同时保护了节点费米弧(反阻尼)。我们的分析自然而然地解释了在实验中观察到的赝间隙的令人费解的特征,例如费米弧在反铁磁区边界处被切断以及热点的从属作用。

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