Unusual phonon density of states and response to the superconducting transition in the In-doped topological crystalline insulator PbSnTe
arXiv:1806.07531 · doi:10.1103/PhysRevB.97.220502
Abstract
We present inelastic neutron scattering results of phonons in (PbSn)InTe powders, with and 0.3. The sample is a topological crystalline insulator, and the sample is a superconductor with a bulk superconducting transition temperature of 4.7 K. In both samples, we observe unexpected van Hove singularities in the phonon density of states at energies of 1--2.5 meV, suggestive of local modes. On cooling the superconducting sample through , there is an enhancement of these features for energies below twice the superconducting-gap energy. We further note that the superconductivity in (PbSn)InTe occurs in samples with normal-state resistivities of order 10 m~cm, indicative of bad-metal behavior. Calculations based on density functional theory suggest that the superconductivity is easily explainable in terms of electron-phonon coupling; however, they completely miss the low-frequency modes and do not explain the large resistivity. While the bulk superconducting state of (PbSn)InTe appears to be driven by phonons, a proper understanding will require ideas beyond simple BCS theory.
6 pages, 5 figures, published as a PRB Rapid Communication