Converting electrons into emergent fermions at a superconductor-Kitaev spin liquid interface
arXiv:2108.07722 · doi:10.1103/PhysRevB.104.235118
Abstract
We study an interface between a Kitaev spin liquid (KSL) in the chiral phase and a non-chiral superconductor. When the coupling across the interface is sufficiently strong, the interface undergoes a transition into a phase characterized by a condensation of a bound state of a Bogoliubov quasiparticle in the superconductor and an emergent fermionic excitation in the spin liquid. In the condensed phase, electrons in the superconductor can coherently convert into emergent fermions in the spin liquid and vice versa. As a result, the chiral Majorana edge mode of the spin liquid becomes visible in the electronic local density of states at the interface, which can be measured in scanning tunneling spectroscopy experiments. We demonstrate the existence of this phase transition, and the non-local order parameter that characterizes it, using density matrix renormalization group simulations of a KSL strip coupled at its edge to a superconductor. An analogous phase transition can occur in a simpler system composed of a one-dimensional spin chain with a spin-flip symmetry coupled to a superconductor.
10 pages, 9 figures
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Cited by in corpus (7)
- Non-local spin correlation as a signature of Ising anyons trapped in vacancies of the Kitaev spin liquid
- Dynamical anyon generation in Kitaev honeycomb non-Abelian spin liquids
- Tunneling spectroscopic signatures of charge doping and associated Mott transition in -RuCl in proximity to graphite
- Drag resistance mediated by quantum spin liquids
- Revealing spinons by proximity effect
- Resonant Inelastic X-ray Scattering from Electronic Excitations in -RuCl Nanolayers
- Tunable anyonic permeability across spin liquid junctions