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Electron irradiation reveals robust fully gapped superconductivity in LaNiGa2

  • S. Ghimire
  • , K. R. Joshi
  • , E. H. Krenkel
  • , M. A. Tanatar
  • , Yunshu Shi
  • , M. Kończykowski
  • , R. Grasset
  • , V. Taufour
  • , P. P. Orth
  • , M. S. Scheurer
  • , R. Prozorov
  • Ames Laboratory
  • Department of Physics and Astronomy
  • Iowa State University
  • Department of Physics and Astronomy
  • University of California, Davis
  • Laboratoire des Solides Irradiés
  • Department of Physics
  • Universität des Saarlandes
  • Institute for Theoretical Physics III
  • University of Suttgart

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7 Citations (Scopus)

Résumé

The effects of 2.5-MeV electron irradiation were studied in the superconducting phase of single crystals of LaNiGa2, using measurements of electrical transport and radio-frequency magnetic susceptibility. The London penetration depth is found to vary exponentially with temperature, suggesting a fully gapped Fermi surface. The inferred superfluid density is close to that of a single-gap weak-coupling isotropic s-wave superconductor. Superconductivity is extremely robust against nonmagnetic point-like disorder induced by electron irradiation. Our results place strong constraints on the previously proposed triplet pairing state by requiring fine-tuned impurity scattering amplitudes and are most naturally explained by a sign-preserving, weak-coupling, and approximately momentum-independent singlet superconducting state in LaNiGa2, which does not break time-reversal symmetry. We discuss how our findings could be reconciled with previous measurements that indicated magnetic signatures in the superconducting phase.

langue originaleAnglais
Numéro d'article024515
journalPhysical Review B
Volume109
Numéro de publication2
Les DOIs
étatPublié - 1 janv. 2024

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