English

Why the anti-nodal quasiparticle dispersion is so flat in the superconducting cuprates?

Superconductivity 2021-07-28 v2 Strongly Correlated Electrons

Abstract

The emergence of the coherent quasiparticle peak and the development of the peak-dip-hump structure in the anti-nodal region below TcT_{c} is the most prominent non-BCS signature of the underdoped high-TcT_{c} cuprates, in which no coherent quasiparticle can be defined in the anti-nodal region above TcT_{c}. The peak-dip-hump structure has been commonly interpreted as the result of the coupling of the electron to some Bosonic mode. However, such an electron-Boson coupling picture does not answer the question of \textit{why the quasiparticle dispersion is so flat in the anti-nodal region}, a behavior totally unexpected for Bogoliubov quasiparticle in a d-wave BCS superconductor. Here we show that the sharp quasiparticle peak in the anti-nodal region should be understood as a new pole in the electron Green's function generated by the strong coupling of the electron to diffusive spin fluctuation around the antiferromagnetic wave vector Q=(π,π)\mathbf{Q}=(\pi,\pi), rather than a nearly free Bogoliubov quasiparticle in a d-wave BCS superconductor. More specifically, we find that the normal self-energy of the electron from the scattering with the diffusive spin fluctuation manifests itself mainly as a level repulsion effect and is responsible for the reduction of both the quasiparticle dispersion and the quasiparticle dissipation rate in the anti-nodal region. We argue that the peak-dip separation in the anti-nodal spectrum should not be interpreted as the energy of the pairing glue.

Keywords

Cite

@article{arxiv.1805.04883,
  title  = {Why the anti-nodal quasiparticle dispersion is so flat in the superconducting cuprates?},
  author = {Tao Li and Da-Wei Yao},
  journal= {arXiv preprint arXiv:1805.04883},
  year   = {2021}
}

Comments

6 pages, 5 figures, corrected some misleading statements in the first version