English

Structure and superconductivity in the binary Re$_{1-x}$Mo$_x$ alloys

Superconductivity 2019-02-08 v1 Strongly Correlated Electrons

Abstract

The binary Re1x_{1-x}Mox_x alloys, known to cover the full range of solid solutions, were successfully synthesized and their crystal structures and physical properties investigated via powder x-ray diffraction, electrical resistivity, magnetic susceptibility, and heat capacity. By varying the Re/Mo ratio we explore the full Re1x_{1-x}Mox_x binary phase diagram, in all its four different solid phases: hcp-Mg (P63/mmcP6_3/mmc), α\alpha-Mn (I43mI\overline{4}3m), β\beta-CrFe (P42/mnmP4_2/mnm), and bcc-W (Im3mIm\overline{3}m), of which the second is non-centrosymmetric with the rest being centrosymmetric. All Re1x_{1-x}Mox_x alloys are superconductors, whose critical temperatures exhibit a peculiar phase diagram, characterized by three different superconducting regions. In most alloys the TcT_c is almost an order of magnitude higher than in pure Re and Mo. Low-temperature electronic specific-heat data evidence a fully-gapped superconducting state, whose enhanced gap magnitude and specific-heat discontinuity suggest a moderately strong electron-phonon coupling across the series. Considering that several α\alpha-Mn-type ReTT alloys (TT = transition metal) show time-reversal symmetry breaking (TRSB) in the superconducting state, while TRS is preserved in the isostructural Mg10_{10}Ir19_{19}B16_{16} or Nb0.5_{0.5}Os0.5_{0.5}, the Re1x_{1-x}Mox_x alloys represent another suitable system for studying the interplay of space-inversion, gauge, and time-reversal symmetries in future experiments expected to probe TRSB in the ReTT family.

Keywords

Cite

@article{arxiv.1901.08633,
  title  = {Structure and superconductivity in the binary Re$_{1-x}$Mo$_x$ alloys},
  author = {T. Shang and D. J. Gawryluk and J. A. T. Verezhak and E. Pomjakushina and M. Shi and M. Medarde and J. Mesot and T. Shiroka},
  journal= {arXiv preprint arXiv:1901.08633},
  year   = {2019}
}

Comments

8 pages, 7 figures, accepted for publication on Physical Review Materials

R2 v1 2026-06-23T07:21:40.543Z