Disorder-enhanced effective masses and deviations from Matthiessen's rule in PdCoO$_2$ thin films
David Barbalas, Ana\"elle Legros, Gaurab Rimal, Seongshik Oh, N. P., Armitage

TL;DR
This study investigates how disorder affects the effective electron mass and resistivity in PdCoO$_2$ thin films, revealing a disorder-driven mass enhancement and deviations from Matthiessen's rule in their transport properties.
Contribution
It provides the first detailed analysis of disorder-induced effective mass changes and deviations from Matthiessen's rule in PdCoO$_2$ thin films using THz spectroscopy and dc transport.
Findings
Resistivity decreases with increasing film thickness.
Large deviations from Matthiessen's rule are observed.
Effective mass increases with disorder, up to twice the bulk value.
Abstract
The observation of hydrodynamic transport in the metallic delafossite PdCoO has increased interest in this family of highly conductive oxides, but experimental studies so far have mostly been confined to bulk crystals. In this work, the development of high-quality thin films of PdCoO has enabled a thorough study of the conductivity as a function of film thickness using both dc transport and time-domain THz spectroscopy. With increasing film thickness from 12 nm to 102 nm, the residual resistivity decreases and we observe a large deviation from Matthiessen's rule (DMR) in the temperature dependence of the resistivity. We find that the complex THz conductivity is well fit by a single Drude term. We fit the data to extract the spectral weight and scattering rate simultaneously. The temperature dependence of the Drude scattering rate is found to be nearly independent of the residual…
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Taxonomy
TopicsCopper-based nanomaterials and applications · Magnetic properties of thin films · Surface and Thin Film Phenomena
