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Evidence of unconventional superconductivity in Dirac semimetal PdTe via point contact spectroscopy
Pritam Das1, Sulagna Dutta1, Saurav Suman1
1Tata Institute of Fundamental Research, Homi Bhabha Road, Mumbai, Maharashtra 400005, India.
Abstract:
Palladium telluride (PdTe), a non-layered intermetallic crystalline Dirac semimetal, captured attention for its unique superconducting properties. In this work, we investigate the superconducting state of PdTe using point-contact Andreev reflection spectroscopy (PCAR) that offers direct insight into the superconducting gap magnitude and superconducting gap symmetry. Measurements were performed down to 2K with and without magnetic field. The experimental data are analyzed using the Blonder-Tinkham-Klapwijk formalism considerings-wave,multibands+swave, p-wave andd -wave symmetries. Conventionals-wave and multi-gaps+swave models fail to reproduce the essential spectral features, even when incorporating variations in interface transparency and quasiparticle broadening. In contrast, the experimental data show excellent agreement with anisotropicp-wave andd-wave models, exhibiting characteristics consistent with nodal anisotropic gap structures. The observed anisotropic gap structure and pronounced deviations from conventional BCS behavior highlight the complex nature of the pairing interactions in PdTe. These findings provide strong evidence of unconventional pairing symmetry in this material.
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