Analytical expression for $\pi$-ton vertex contributions to the optical conductivity
Abstract
Vertex corrections from the transversal particle-hole channel, so-called -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 -tons, and how they affect the optical conductivity as a function of correlation length , fermion lifetime , temperature , and coupling strength to spin or charge fluctuations . In particular, for , the critical temperature for antiferromagnetic or charge ordering, the dc vertex correction is algebraic in one dimension and logarithmic in two dimensions. Here, is the critical exponent for the correlation length. If we have the exponential scaling of an ideal two-dimensional system, the DDP becomes more pronounced with increasing 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 dependence at low temperatures. Further, we find the maximum of the DPP to be given by the inverse lifetime: . These characteristic dependencies can guide experiments to evidence -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