Band-edge quasiparticles from electron phonon coupling and resistivity saturation
Abstract
We address the problem of resistivity saturation observed in materials such as the A-15 compounds. To do so, we calculate the resistivity for the Hubbard-Holstein model in infinite spatial dimensions to second order in on-site repulsion and to first order in (dimensionless) electron-phonon coupling strength , where is the half-bandwidth. We identify a unique mechanism to obtain two parallel quantum conducting channels: low-energy and band-edge high-energy quasi-particles. We identify the source of the hitherto unremarked high-energy quasi-particles as a positive slope in the frequency-dependence of the real part of the electron self-energy. In the presence of phonons, the self-energy grows linearly with the temperature at high-, causing the resistivity to saturate. As is increased, the saturation temperature is pushed to higher values, offering a mechanism by which electron-correlations destroy saturation.
Cite
@article{arxiv.1806.11227,
title = {Band-edge quasiparticles from electron phonon coupling and resistivity saturation},
author = {E. Perepelitsky and B. S. Shastry},
journal= {arXiv preprint arXiv:1806.11227},
year = {2019}
}
Comments
8 pages, 15 figures