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Nanoscale heterogeneity induced by nonmagnetic Zn dopants in the quantum critical metal CeCoIn5: In 115 NQR/NMR and Co 59 NMR study

  • H. Sakai
  • , Y. Tokunaga
  • , S. Kambe
  • , J. X. Zhu
  • , F. Ronning
  • , J. D. Thompson
  • , S. K. Ramakrishna
  • , A. P. Reyes
  • , K. Suzuki
  • , Y. Oshima
  • , M. Yokoyama

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Antiferromagnetism in a prototypical quantum critical metal CeCoIn5 is known to be induced by slight substitutions of nonmagnetic Zn atoms for In. In nominally 7% Zn-substituted CeCoIn5, an antiferromagnetic (AFM) state coexists with heavy fermion superconductivity. Heterogeneity of the electronic states is investigated in Zn-doped CeCoIn5 by means of nuclear quadrupole and magnetic resonances (NQR and NMR). Site-dependent NQR relaxation rates 1/T1 indicate that the AFM state is locally nucleated around Zn substituents in the matrix of a heavy fermion state, and percolates through the bulk at the AFM transition temperature TN. At lower temperatures, an anisotropic superconducting (SC) gap below the SC transition temperature Tc, and the SC state permeates through the AFM regions via a SC proximity effect. Applying an external magnetic field induces a spin-flop transition near 5 T, reducing the volume of the AFM regions. Consequently, a short-ranged inhomogeneous AFM state survives and coexists with a paramagnetic Fermi liquid state at high fields.

Original languageEnglish
Article number085106
JournalPhysical Review B - Condensed Matter and Materials Physics
Volume104
Issue number8
DOIs
StatePublished - Aug 15 2021

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