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The metal-insulator transition of NbO 2 : An embedded Peierls instability

2001/06/07 by V. Eyert, V Eyert · 3 citations
Materials Science · Physics and Astronomy · #Advanced Condensed Matter Physics #Photorefractive and Nonlinear Optics #Transition Metal Oxide Nanomaterials #cond-mat.str-el

paper · pdf · doi:10.1209/epl/i2002-00452-6

published as Europhys. Lett. 58, 851-856 (2002) · 4 pages, revtex, 6 eps figures, additional material avalable at http://www.physik.uni-augsburg.de/~eyert/

arxiv created 2001/06/07 · openalex publication_date 2002/06/01 · arxiv updated 2009/11/30 · openalex created_date 2016/06/24 · openalex updated_date 2026/07/30

Abstract

Results of first-principles augmented spherical-wave electronic-structure calculations for niobium dioxide are presented. Both metallic rutile and insulating low-temperature NbO 2 , which crystallizes in a distorted rutile structure, are correctly described within density functional theory and the local density approximation. Metallic conductivity is carried by metal t 2 g orbitals, which fall into the one-dimensional d ∥ band and the isotropically dispersing e g π bands. Hybridization of both types of bands is almost negligible outside narrow rods along the line X - R . In the low-temperature phase splitting of the d ∥ band due to metal-metal dimerization as well as upshift of the e g π bands due to increased p - d overlap remove the Fermi surface and open an optical band gap of about 0.1 eV. The metal-insulator transition arises as a Peierls instability of the d ∥ band in an embedding background of e g π electrons. This basic mechanism should also apply to VO 2 , where, however, electronic correlations are expected to play a greater role due to stronger localization of the 3 d electrons.

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