Optical and transport properties of NbN thin films revisited

Fuente: arXiv
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Main Authors: Kern, Samuel, Neilinger, Pavol, Poláčková, Magdaléna, Baránek, Martin, Plecenik, Tomáš, Roch, Tomáš, Grajcar, Miroslav
Format: Preprint
Published: 2024
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author Kern, Samuel
Neilinger, Pavol
Poláčková, Magdaléna
Baránek, Martin
Plecenik, Tomáš
Roch, Tomáš
Grajcar, Miroslav
author_facet Kern, Samuel
Neilinger, Pavol
Poláčková, Magdaléna
Baránek, Martin
Plecenik, Tomáš
Roch, Tomáš
Grajcar, Miroslav
contents Highly disordered NbN thin films exhibit promising superconducting and optical properties. Despite extensive study, discrepancies in its basic electronic properties persist. Analysis of the optical conductivity of disordered ultra-thin NbN films, obtained from spectroscopic ellipsometry by standard Drude-Lorentz model, provides inconsistent parameters. We argue that this discrepancy arise from neglecting the presence of quantum corrections to conductivity in the IR range. To resolve this matter, we propose a modification to the Drude-Lorentz model, incorporating quantum corrections. The parameters obtained from the modified model are consistent not only with transport and superconducting measurements but also with ab initio calculations. The revisited values describing conduction electrons, which differ significantly from commonly adopted ones, are the electron relaxation rate $Γ\approx1.8~\textrm{eV}/\hbar$, the Fermi velocity $v_F \approx 0.7 \times 10^{6}~\textrm{ms}^{-1}$ and the electron density of states $N(E_F)=2~$states of both spins/eV/$V_{\textrm{f.u.}}$.
format Preprint
id arxiv_https___arxiv_org_abs_2405_03704
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optical and transport properties of NbN thin films revisited
Kern, Samuel
Neilinger, Pavol
Poláčková, Magdaléna
Baránek, Martin
Plecenik, Tomáš
Roch, Tomáš
Grajcar, Miroslav
Superconductivity
Disordered Systems and Neural Networks
Strongly Correlated Electrons
Highly disordered NbN thin films exhibit promising superconducting and optical properties. Despite extensive study, discrepancies in its basic electronic properties persist. Analysis of the optical conductivity of disordered ultra-thin NbN films, obtained from spectroscopic ellipsometry by standard Drude-Lorentz model, provides inconsistent parameters. We argue that this discrepancy arise from neglecting the presence of quantum corrections to conductivity in the IR range. To resolve this matter, we propose a modification to the Drude-Lorentz model, incorporating quantum corrections. The parameters obtained from the modified model are consistent not only with transport and superconducting measurements but also with ab initio calculations. The revisited values describing conduction electrons, which differ significantly from commonly adopted ones, are the electron relaxation rate $Γ\approx1.8~\textrm{eV}/\hbar$, the Fermi velocity $v_F \approx 0.7 \times 10^{6}~\textrm{ms}^{-1}$ and the electron density of states $N(E_F)=2~$states of both spins/eV/$V_{\textrm{f.u.}}$.
title Optical and transport properties of NbN thin films revisited
topic Superconductivity
Disordered Systems and Neural Networks
Strongly Correlated Electrons
url https://arxiv.org/abs/2405.03704