English

The Drude-Smith Model for Conductivity: de novo Derivation and Interpretation

Materials Science 2021-01-26 v2

Abstract

The Drude-Smith model successfully describes the frequency and phase-resolved electrical conductivity data for a surprisingly broad range of systems, especially in the terahertz region. Still, its interpretation is unclear since its original derivation is flawed. We use an intuitive physical framework to derive the Drude-Smith formula for systems where microscopically free charges are accumulated on a mesoscopic scale by localized scatterers. Within this framework, the model allows us to quantify the microscopic momentum relaxation time of the charges and the fraction of mesoscopically localized charges in addition to the direct current limit of the conductivity. We show that the Drude-Smith model is unique among different Drude-Lorentz models because the relaxation time of the free carriers also determines the frequency and damping of the resonance of the bound charges.

Keywords

Cite

@article{arxiv.2008.07913,
  title  = {The Drude-Smith Model for Conductivity: de novo Derivation and Interpretation},
  author = {Keno L. Krewer and Marco Ballabio and Mischa Bonn},
  journal= {arXiv preprint arXiv:2008.07913},
  year   = {2021}
}

Comments

The assumptions made in eq. (6) / fig 1 b) are self- contradictory. It is no legitimate to assume that the incoming current stops instantaneously but the back current does not. The state of the art (Ku\v{z}el, P. & N\v{e}mec, H. Adv. Opt. Mater. 8, 1--23 (2020).) is that Drude-Smith is an empirical parameterisation and a general microscopic interpretation of the parameters alone should not be done