English

Fermi surface and pseudogap in highly doped Sr$_{2}$IrO$_{4}$

Strongly Correlated Electrons 2026-01-13 v4 Superconductivity

Abstract

The fate of the Fermi surface in bulk electron-doped Sr2_{2}IrO4_{4} remains elusive, as does the origin and extension of its pseudogap phase. Here, we use high-resolution angle-resolved photoelectron spectroscopy (ARPES) to investigate the electronic structure of Sr2x_{2-x}Lax_{x}IrO4_{4} up to x=0.2x=0.2, a factor of two higher than in previous work. We find that the antinodal pseudogap persists up to the highest doping level, and thus beyond the sharp increase in Hall carrier density to 1+x\simeq 1+x recently observed above x0.16x^{*}\simeq 0.16 [Y.-T. Hsu et al., Nature Physics 20, 1593 (2024)]. This suggests that doped iridates host a unique phase of matter in which a large Hall density coexists with an anisotropic pseudogap, breaking up the Fermi surface into disconnected arcs. The temperature boundary of the pseudogap is T200T^{*}\simeq 200 K for x=0.2x=0.2, comparable to cuprates and to the energy scale of short range antiferromagnetic correlations in cuprates and iridates.

Keywords

Cite

@article{arxiv.2411.18542,
  title  = {Fermi surface and pseudogap in highly doped Sr$_{2}$IrO$_{4}$},
  author = {Y. Alexanian and A. de la Torre and S. McKweon Walker and M. Straub and G. Gatti and A. Hunter and S. Mandloi and E. Cappelli and S. Riccò and F. Y. Bruno and M. Radovic and N. C. Plumb and M. Shi and J. Osiecki and C. Polley and T. K. Kim and P. Dudin and M. Hoesch and R. S. Perry and A. Tamai and F. Baumberger},
  journal= {arXiv preprint arXiv:2411.18542},
  year   = {2026}
}

Comments

9 pages, 4 figures. Supplementary Information: 3 pages, 3 figures

R2 v1 2026-06-28T20:14:53.664Z