English

Dynamic electron correlations with charge order wavelength along all directions in the copper oxide plane

Superconductivity 2021-02-02 v1 Strongly Correlated Electrons

Abstract

In strongly correlated systems the strength of Coulomb interactions between electrons, relative to their kinetic energy, plays a central role in determining their emergent quantum mechanical phases. We perform resonant x-ray scattering on Bi2_2Sr2_2CaCu2_2O8+δ_{8+\delta}, a prototypical cuprate superconductor, to probe electronic correlations within the CuO2_2 plane. We discover a dynamic quasi-circular pattern in the xx-yy scattering plane with a radius that matches the wave vector magnitude of the well-known static charge order. Along with doping- and temperature-dependent measurements, our experiments reveal a picture of charge order competing with superconductivity where short-range domains along xx and yy can dynamically rotate into any other in-plane direction. This quasi-circular spectrum, a hallmark of Brazovskii-type fluctuations, has immediate consequences to our understanding of rotational and translational symmetry breaking in the cuprates. We discuss how the combination of short- and long-range Coulomb interactions results in an effective non-monotonic potential that may determine the quasi-circular pattern.

Keywords

Cite

@article{arxiv.2102.00016,
  title  = {Dynamic electron correlations with charge order wavelength along all directions in the copper oxide plane},
  author = {F. Boschini and M. Minola and R. Sutarto and E. Schierle and M. Bluschke and S. Das and Y. Yang and M. Michiardi and Y. C. Shao and X. Feng and S. Ono and R. D. Zhong and J. Schneeloch and G. D. Guo and E. Weschke and F. He and Y. D. Chuang and B. Keimer and A. Damascelli and A. Frano and E. H. da Silva Neto},
  journal= {arXiv preprint arXiv:2102.00016},
  year   = {2021}
}

Comments

This is a post-peer-review, pre-copyedit version of an article published in Nature Communications. The final authenticated version is available online at: https://doi.org/10.1038/s41467-020-20824-7. Supplementary materials are available through the published version in Nature Communications