The attraction between antiferromagnetic quantum vortices as origin of superconductivity in cuprates

P. Marchetti
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Abstract

We propose as key of superconductivity in (hole-doped) cuprates a novel excitation of magnetic origin, characteristic of two-dimensions and of purely quantum nature: the antiferromagnetic spin vortices. In this formalism the charge pairing arises from a Kosterlitz-Thouless-like attraction between such vortices centered on opposite N\'eel sublattices. This charge pairing induces also the spin pairing through the action of a gauge force generated by the no-double occupation constraint imposed in the t-J model of the CuO planes of the cuprates. Superconductivity arises from coherence of pairs of excitations describing Zhang-Rice singlets and it is not of standard BCS type. We show that many experimental features of the cuprates can find a natural explanation in this formalism.
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反铁磁量子涡旋之间的相互吸引是铜酸盐中超导性的起源
我们提出了一种新的二维纯量子性质的磁源激发:反铁磁性自旋涡,作为(空穴掺杂)铜酸盐超导的关键。在这种形式中,电荷对来自于以相对的N\ eel子晶格为中心的涡旋之间的kosterlitz - thoulless类吸引。这种电荷配对还通过在铜的CuO平面的t-J模型中施加的非双占据约束所产生的规范力的作用诱导自旋配对。超导性是由描述张-米单线态的激励对的相干性产生的,它不是标准的BCS类型。我们表明,铜酸盐的许多实验特征可以在这种形式主义中找到自然的解释。
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Spin topology architectures in low dimensional magnets Getting the jump in the Kosterlitz–Thouless transition FRONT MATTER Topological phase transitions in photonic lattices Heterogeneous interfaces for teasing out the physics of embedded surface states
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