JOURNAL ARTICLE

Structural phase transition and related electronic properties in quasi-one-dimensional (NbSe4)10/3I

Maciej ZubkoJoachim KuszA. ProdanSašo ŠturmH. J. P. van MiddenJ.C. BennettGrzegorz DubinErik ZupaničHorst Böhm

Year: 2013 Journal:   Acta Crystallographica Section B Structural Science Crystal Engineering and Materials Vol: 69 (3)Pages: 229-237   Publisher: Wiley

Abstract

The real crystal structure of the (NbSe4)(10/3)I charge density wave (CDW) compound is studied by simulation of the X-ray diffuse scattering. The average structure of the low-temperature twinned phase is determined and the phase transition is attributed to the formation of a CDW. The diffuse streaking, present in X-ray diffraction patterns above and below the transition at T = 282 K, is shown to be a projection of diffuse concentric rings perpendicular to the c* direction. The simulated patterns, based on a mismatch model between infinite NbSe4 chains, correlated by I atoms, are in good accordance with the experimental patterns. In addition to the experiments, the electronic properties of the high- and the low-temperature phases are calculated with the extended Hückel tight-binding method. The Fermi surfaces of the average structures above and below the phase transition appear very similar. Their shapes support a nesting instability and a CDW formation. The weak incommensurate CDW satellites, present below the phase transition, are at 100 K properly described by a modulation wavevector q = [0.06 (1), 0, 0.55 (1)].

Keywords:
Charge density wave Condensed matter physics Phase transition Diffraction Wave vector Phase (matter) Crystal (programming language) Scattering Perpendicular Streaking Materials science Crystallography Chemistry Physics Optics Geometry Superconductivity

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Citation History

Topics

Organic and Molecular Conductors Research
Physical Sciences →  Materials Science →  Electronic, Optical and Magnetic Materials
Solid-state spectroscopy and crystallography
Physical Sciences →  Materials Science →  Materials Chemistry
Molecular Junctions and Nanostructures
Physical Sciences →  Engineering →  Electrical and Electronic Engineering

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