Signatures of the order parameter of a superconducting adatom layer in magnetic field dependent quasiparticle interference
arXiv:2211.13584 · doi:10.1103/PhysRevB.107.174504
Abstract
Experiments have observed superconductivity in atomically-thin metallic layers deposited on semiconducting substrates. As in any superconductor, it is important to determine the structure of the superconducting pairing function in order to reveal the mechanism responsible for superconductivity. To that end, we study the possible superconducting states of two-dimensional triangular lattices. We calculate the quasiparticle interference (QPI) patterns which would result from various nearest-neighbor pairing order parameters, and show how the QPI can be used to distinguish between those order parameters. The QPI patterns are the momentum-space representations of real-space local density-of-states fluctuations: the QPI signal at momentum reveals the strength of scattering processes at that momentum transfer. We show how characteristic differences between scattering from charge disorder (i.e. impurities) and from order-parameter disorder (i.e. vortices) can be used to identify the angular momentum of the superconducting pairs.
12 pages, 8 figures
References in corpus (7)
- Majorana Fermions and a Topological Phase Transition in Semiconductor-Superconductor Heterostructures
- Superconductivity in the repulsive Hubbard model: an asymptotically exact weak-coupling solution
- Realization of a hole-doped Mott insulator on a triangular silicon lattice
- Triplet Superconductivity from Nonlocal Coulomb Repulsion in an Atomic Sn Layer Deposited onto a Si(111) Substrate
- Magnetic field evolution of the quasiparticle interference in a d-wave superconductor
- Quasiparticle interference patterns as a test for the nature of the pseudogap phase in the cuprate superconductors
- Andreev Edge State on Semi-Infinite Triangular Lattice: Detecting the Pairing Symmetry in Na_0.35CoO_2.yH_2O