English

Intertwined Orders and Electronic Structure in Superconducting Vortex Halos

Superconductivity 2023-07-17 v1 Strongly Correlated Electrons

Abstract

We present a comprehensive study of vortex structures in dd-wave superconductors from large-scale renormalized mean-field theory of the square-lattice tt-tt'-JJ model, which has been shown to provide a quantitative modeling for high-TcT_c cuprate superconductors. With an efficient implementation of the kernel polynomial method for solving electronic structures, self-consistent calculations involving up to 10510^5 variational parameters are performed to investigate the vortex solutions on lattices of up to 10410^4 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 dd-wave superconducting state. Despite its theoretical prediction, the ZBCP was not observed in most doping range of cuprates except in heavily over-doped samples at low magnetic field. The second issue is the nature of the checkerboard charge density waves (CDWs) with a period of about 8 unit cells in the vortex halo at optimal doping. Although it has been suggested that such bipartite structure arises from low-energy quasiparticle interference, another intriguing scenario posits that the checkerboard CDWs originate from an underlying bidirectional pair-density wave (PDW) ordering with the same period. We present a coherent interpretation of these experimental results based on systematic studies of the doping and magnetic field effects on vortex solutions with and without a checkerboard structure. The mechanism of the emergent intertwined orders within the vortex halo is also discussed.

Keywords

Cite

@article{arxiv.2212.05685,
  title  = {Intertwined Orders and Electronic Structure in Superconducting Vortex Halos},
  author = {Yi-Hsuan Liu and Wei-Lin Tu and Gia-Wei Chern and Ting-Kuo Lee},
  journal= {arXiv preprint arXiv:2212.05685},
  year   = {2023}
}

Comments

19 pages, 7 figures

R2 v1 2026-06-28T07:30:21.705Z