Published November 1, 2007 | Version v1
Journal article

Superconductivity in the tungsten bronze RbxWO3 (0.20≤x≤0.33) in connection with its structure, electronic density of states, and phonon density of states

  • 1. Institut Laue Langevin, Boite Postale 156, 38042 Grenoble Cedex 9 (France)
  • 2. Institut NEEL, CNRS and UJF, Boite Postale 166, 38042 Grenoble Cedex 9 (France)

Description

We have measured the magnetic susceptibility of the RbxWO3 compound (0.20≤x≤0.33) and examined its structural properties and lattice dynamics, using elastic and inelastic neutron scattering (INS) experiments, in order to gain further insight into the unusual features of its superconducting state, namely (i) the stabilizing effect resulting from the reduction of rubidium content, i.e., of the conduction electron density [what we shall name the ''Tc (x) paradox''], and (ii) the destabilizing effect of the ordering of the Rb ions. We also performed density-functional calculations of the phonon dispersion in the ''stoichiometric'' Rb0.33WO3 and Cs0.33WO3 to identify the main features of the phonon spectra. These calculations give a very satisfactory description of the INS data and confirm the assignment to these bronzes of a lower (orthorhombic) symmetry than previously proposed. Our results contradict the previous interpretations of the Tc (x) paradox and of the ordering effect: (i) no general softening of the lattice accompanies the increase of the Rb-vacancy population and (ii) no general decrease of the electron density of states DEF distinguishes the ordered nonsuperconducting Rb0.25WO3 from its neighboring disordered parents. It appears, therefore, that the electron-electron coupling in this system probably proceeds through well-defined electronic states and phonons. This is a feature these ''hexagonal'' tungsten bronzes (HTB) apparently share with several high-Tc materials. We discuss what could be the mechanisms responsible for the very selective electron-phonon coupling in the HTB

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Identifiers

Publishing Information

Journal Title
Physical Review. B, Condensed Matter and Materials Physics
Journal Volume
76
Journal Issue
17
Journal Page Range
p. 174511-174511.15
ISSN
1098-0121

Optional Information

Notes
(c) 2007 The American Physical Society