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Evidence of a second-order Peierls-driven metal-insulator transition in crystalline NbO2

  • Matthew J. Wahila
  • , Galo Paez
  • , Christopher N. Singh
  • , Anna Regoutz
  • , Shawn Sallis
  • , Mateusz J. Zuba
  • , Jatinkumar Rana
  • , M. Brooks Tellekamp
  • , Jos E. Boschker
  • , Toni Markurt
  • , Jack E.N. Swallow
  • , Leanne A.H. Jones
  • , Tim D. Veal
  • , Wanli Yang
  • , Tien Lin Lee
  • , Fanny Rodolakis
  • , Jerzy T. Sadowski
  • , David Prendergast
  • , Wei Cheng Lee
  • , W. Alan Doolittle
  • Louis F.J. Piper
  • State University of New York Binghamton University
  • Imperial College London
  • Georgia Institute of Technology
  • Leibniz Institute for Crystal Growth
  • University of Liverpool
  • Lawrence Berkeley National Laboratory
  • Diamond Light Source
  • Argonne National Laboratory
  • Brookhaven National Laboratory

Research output: Contribution to journalArticlepeer-review

34 Scopus citations

Abstract

The metal-insulator transition of NbO2 is thought to be important for the functioning of recent niobium oxide-based memristor devices, and is often described as a Mott transition in these contexts. However, the actual transition mechanism remains unclear, as current devices actually employ electroformed NbOx that may be inherently different to crystalline NbO2. We report on our synchrotron x-ray spectroscopy and density-functional-theory study of crystalline, epitaxial NbO2 thin films grown by pulsed laser deposition and molecular beam epitaxy across the metal-insulator transition at ∼810°C. The observed spectral changes reveal a second-order Peierls transition driven by a weakening of Nb dimerization without significant electron correlations, further supported by our density-functional-theory modeling. Our findings indicate that employing crystalline NbO2 as an active layer in memristor devices may facilitate analog control of the resistivity, whereby Joule-heating can modulate Nb-Nb dimer distance and consequently control the opening of a pseudogap.

Original languageEnglish
Article number074602
JournalPhysical Review Materials
Volume3
Issue number7
DOIs
StatePublished - Jul 16 2019

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