English

Analytical expression for $\pi$-ton vertex contributions to the optical conductivity

Strongly Correlated Electrons 2025-04-29 v2

Abstract

Vertex corrections from the transversal particle-hole channel, so-called π\pi-tons, are generic in models for strongly correlated electron systems and can lead to a displaced Drude peak (DDP). Here, we derive the analytical expression for these π\pi-tons, and how they affect the optical conductivity as a function of correlation length ξ\xi, fermion lifetime τ\tau, temperature TT, and coupling strength to spin or charge fluctuations gg. In particular, for TTcT\rightarrow T_c, the critical temperature for antiferromagnetic or charge ordering, the dc vertex correction is algebraic σVERTdcξ(TTc)ν\sigma_{VERT}^{dc}\propto \xi \sim (T-T_c)^{-\nu} in one dimension and logarithmic σVERTdclnξνln(TTc)\sigma_{VERT}^{dc}\propto \ln\xi \sim \nu \ln (T-T_c) in two dimensions. Here, ν\nu is the critical exponent for the correlation length. If we have the exponential scaling ξe1/T\xi \sim e^{1/T} of an ideal two-dimensional system, the DDP becomes more pronounced with increasing TT but fades away at low temperatures where only a broadening of the Drude peak remains, as it is observed experimentally, with the dc resistivity exhibiting a linear TT dependence at low temperatures. Further, we find the maximum of the DPP to be given by the inverse lifetime: ωDDP1/τ\omega_{DDP} \sim 1/\tau. These characteristic dependencies can guide experiments to evidence π\pi-tons in actual materials.

Keywords

Cite

@article{arxiv.2409.11158,
  title  = {Analytical expression for $\pi$-ton vertex contributions to the optical conductivity},
  author = {Juraj Krsnik and Anna Kauch and Karsten Held},
  journal= {arXiv preprint arXiv:2409.11158},
  year   = {2025}
}

Comments

27 pages, 7 figures