Superconducting properties of the spin Hall candidates Ti<sub>3</sub>Ir and Ti<sub>3</sub>Pt

ORAL

Abstract

Materials with A15 structure are emerging as a novel platform for realizing new phenomena resulting from the interplay of superconductivity, band topology and spin dynamics. Here, we present a study of the superconducting properties of the spin Hall candidate Ti3Ir, an A15 compound, and its homolog Ti3Pt. Bulk measurements including electrical resistivity, magnetic susceptibility and specific heat on Ti3Ir show two clear anomalies: a superconducting transition at Tc ~ 4.5 K, and an anomaly at higher temperature T* ~ 90 K. Ti3Pt has a superconducting Tc ~ 0.8 K but does not display an anomaly at temperatures above Tc. We attribute the high temperature transition in Ti3Ir to crystal symmetry breaking resulting in a possible martensitic transition and charge density wave (CDW) formation. Via multiple techniques, we determine a superconducting phase diagram for each material and find large Ginzburg-Landau parameters, identifying both materials as extreme type-II. London penetration depth measurements at 3He temperatures on Ti3Ir are consistent with a full BCS-like superconducting gap.

*This work was supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division.

Presenters

  • Matthew P Smylie

    • Hofstra University

Authors

  • Matthew P Smylie

    • Hofstra University
  • Ramakanta Chapai

    • Argonne National Laboratory
  • Ulrich Welp

    • Argonne National Laboratory
  • Xinglong Chen

    • Argonne National Laboratory
  • Duck Young Chung

    • Argonne National Laboratory
  • Wai-Kwong Kwok

    • Argonne National Laboratory
  • J. F Mitchell

    • Argonne National Laboratory