Sub-Phases in the Superconducting State of CeIrIn Revealed by Low Temperature -axis Heat Transport
arXiv:2204.06163 · doi:10.1103/PhysRevResearch.4.013192
Abstract
Low-temperature (down to 50 mK) thermal conductivity measurements with the heat flow direction along the inter-plane tetragonal -axis, , were used to study the superconducting state of heavy fermion CeIrIn. Measurements were performed in the magnetic fields both parallel to the heat flow direction, , and transverse to it, . Inter-plane heat conductivity in configuration shows negligible initial increase with magnetic field and a rapid rise on approaching from below, similar to the expectations for the superconducting gap without line nodes. This observation is in stark contrast to monotonic increase found in the previous in-plane heat transport measurements. In the configuration with the magnetic field breaking the tetragonal symmetry of the lattice, , reveals non-monotonic evolution with temperature and magnetic field suggesting sub-phase boundary in the superconducting state. The characteristic temperature 0.07~K of the sub-boundary is well within the domain of bulk superconductivity 0.4~K and 1.0~T. These results are consistent with a superconducting gap with an equatorial line node and polar point nodes, a gap symmetry of the D point group, for which magnetic field along the tetragonal plane breaks the degeneracy of the multi-component order parameter and induces a phase transition with nodal topology change.
11 pages, 7 figures
References in corpus (13)
- Quantum Criticality in Heavy Fermion Metals
- Quantum criticality
- The Order Parameter for the Superconducting Phases of UPt
- A Sharp Peak of the Zero-Temperature Penetration Depth at Optimal Composition in BaFe2(As1-xPx)2
- Reversible Tuning of the Heavy Fermion Ground State in CeCoIn
- Exotic Superconducting Properties in the Electron-Hole Compensated Heavy Fermion `Semimetal' URu2Si2
- Unpaired Electrons in the Heavy-Fermion Superconductor CeCoIn_{5}
- The Origin of Anomalous Low-Temperature Downturns in the Thermal Conductivity of Cuprates
- Thermal conductivity evidence for d_{x^2-y^2} pairing symmetry in the heavy-fermion CeIrIn5 superconductor
- Probing the nodal gap in the pressure-induced heavy fermion superconductor CeRhIn5
- Hybrid gap structure in the heavy-fermion superconductor CeIrIn
- Ambient-pressure bulk superconductivity deep in the magnetic state of CeRhIn5
- Magnetic structure of Cd-doped CeIrIn