Intertwined Orders and Electronic Structure in Superconducting Vortex Halos
Yi-Hsuan Liu, Wei-Lin Tu, Gia-Wei Chern, Ting-Kuo Lee

TL;DR
This paper uses large-scale renormalized mean-field theory to study vortex structures in high-$T_c$ cuprate superconductors, explaining experimental puzzles related to zero-bias conductance peaks and checkerboard charge density waves.
Contribution
It provides a comprehensive theoretical analysis of vortex states in cuprates, linking intertwined orders to experimental observations and exploring the role of pair-density waves.
Findings
Zero-bias conductance peak absent in most doping ranges
Checkerboard charge density waves linked to pair-density wave order
Doping and magnetic field influence vortex structures significantly
Abstract
We present a comprehensive study of vortex structures in -wave superconductors from large-scale renormalized mean-field theory of the square-lattice -- model, which has been shown to provide a quantitative modeling for high- cuprate superconductors. With an efficient implementation of the kernel polynomial method for solving electronic structures, self-consistent calculations involving up to variational parameters are performed to investigate the vortex solutions on lattices of up to sites. By taking into account the strong correlation of the model, our calculations shed new lights on two puzzling results that have emerged from recent scanning tunneling microscopy (STM) experiments. The first concerns the issue of the zero-biased-conductance peak (ZBCP) at the vortex core for a uniform -wave superconducting state. Despite its theoretical prediction,…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Superconductivity in MgB2 and Alloys · Advanced Chemical Physics Studies
