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Neutron, electron, and x-ray scattering investigation of Cr1-x Vx near quantum criticality

  • D. A. Sokolov
  • , M. C. Aronson
  • , L. Wu
  • , Y. Zhu
  • , C. Nelson
  • , J. F. Mansfield
  • , K. Sun
  • , R. Erwin
  • , J. W. Lynn
  • , M. Lumsden
  • , S. E. Nagler

    Research output: Contribution to journalArticlepeer-review

    8 Scopus citations

    Abstract

    The weakness of electron-electron correlations in the itinerant antiferromagnet Cr doped with V has long been considered the reason that neither new collective electronic states nor even non-Fermi-liquid behavior are observed when antiferromagnetism in Cr1-xVx is suppressed to zero temperature. We present the results of neutron and electron diffraction measurements of several lightly doped single crystals of Cr1-xVx in which the archetypal spin density wave instability is progressively suppressed as the V content increases, freeing the nesting-prone Fermi surface for a new striped charge instability that occurs at xc=0.037. This novel nesting driven instability relieves the entropy accumulation associated with the suppression of the spin density wave and avoids the formation of a quantum critical point by stabilizing a new type of charge order at temperatures in excess of 400 K. Restructuring of the Fermi surface near quantum critical points is a feature found in materials as diverse as heavy fermions, high-temperature copper oxide superconductors and now even elemental metals such as Cr.

    Original languageEnglish
    Article number035139
    JournalPhysical Review B - Condensed Matter and Materials Physics
    Volume90
    Issue number3
    DOIs
    StatePublished - Jul 29 2014

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