Hole pairing from attraction of opposite chirality spin vortices: Non-BCS superconductivity in Underdoped Cuprates
P. A. Marchetti, F. Ye, Z. B. Su, L. Yu

TL;DR
This paper proposes a novel non-BCS superconductivity mechanism in underdoped cuprates, involving spin vortex attraction and holon pairing, leading to a kinetic-energy-driven transition with strong AF-SC interplay.
Contribution
It introduces a gauge-theoretic approach with spin vortices and holon pairing to explain superconductivity in cuprates, differing from traditional BCS theory.
Findings
Identification of spin vortex attraction as pairing force
Two crossover temperatures indicating precursor pairing states
Universal relation between Tc and resonance mode energy
Abstract
Within a gauge approach to the t-J model, we propose a new, non-BCS mechanism of superconductivity for underdoped cuprates. We implement the no-double occupancy constraint with a (semionic) slave-particle formalism. The dopant generates a vortex-like quantum distortion of the AF background centered on the empty sites, with opposite chirality for cores on the two N\'eel sublattices. Empty sites are described in terms of spinless fermionic holons and the long-range attraction between spin vortices on two opposite N\'eel sublattices is the holon pairing force, leading eventually to SC. The spin fluctuations are described by bosonic spinons with a gap generated by scattering on spin vortices. Due to the occupation constraint, there is a gauge attraction between holon and spinon, binding them into a physical hole. Through gauge interaction the spin vortex attraction induces the formation of…
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