English

Exciton dynamics uncovering electron fractionalization in superconducting cuprates

Strongly Correlated Electrons 2023-01-11 v2

Abstract

Electron quasiparticles play a crucial role in simplifying the description of many-body physics in solids with surprising success. Conventional Landau's Fermi-liquid and quasiparticle theories for high-temperature superconducting cuprates have, however, received skepticism from various angles. A path-breaking framework of electron fractionalization has been established to replace the Fermi-liquid theory for systems that show the fractional quantum Hall effect and the Mott insulating phenomena; whether it captures the essential physics of the pseudogap and superconducting phases of cuprates is still an open issue. Here, we show that excitonic excitation of optimally doped Bi2_2Sr2_2CaCu2_2O8+δ_{8+\delta} with energy far above the superconducting-gap energy scale, about 1 eV or even higher, is unusually enhanced by the onset of superconductivity. Our finding proves the involvement of such high-energy excitons in superconductivity. Therefore, the observed enhancement in the spectral weight of excitons imposes a crucial constraint on theories for the pseudogap and superconducting mechanisms. A simple two-component fermion model which embodies electron fractionalization in the pseudogap state well explains the change, pointing toward a novel route for understanding the electronic structure of superconducting cuprates.

Keywords

Cite

@article{arxiv.2207.12352,
  title  = {Exciton dynamics uncovering electron fractionalization in superconducting cuprates},
  author = {A. Singh and H. Y. Huang and J. D. Xie and J. Okamoto and C. T. Chen and T. Watanabe and A. Fujimori and M. Imada and D. J. Huang},
  journal= {arXiv preprint arXiv:2207.12352},
  year   = {2023}
}