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Trapped Ion Quantum Computing Superconducting Qubits

From Topological Superconductivity to Quantum Hall States in Coupled Wires

arXiv
Authors: Fan Yang, Vivien Perrin, Alexandru Petrescu, Ion Garate, Karyn Le Hur

Year

2019

Paper ID

7283

Status

Preprint

Abstract Read

~2 min

Abstract Words

139

Citations

N/A

Abstract

We present a theoretical study of the interplay between topological p-wave superconductivity, orbital magnetic fields and quantum Hall phases in coupled wire systems. First, we calculate the phase diagram and physical observables of a fermionic ladder made of two coupled Kitaev chains, and discuss the presence of two and four Majorana zero modes. Second, we analyze hybrid systems consisting of a Kitaev chain coupled to a Luttinger liquid. By tuning the magnetic field and the carrier density, we identify quantum Hall and charge density wave phases, as well as regimes in which superconductivity is induced in the second chain by proximity effect. Finally, we consider two-dimensional systems made of weakly coupled ladders. There, we engineer a p+ip superconductor and describe a generalization of the ν=1/2 fractional quantum Hall phase. These phases might be realized in solid-state or cold-atom nanowires.

Why This Paper Matters

  • This paper contributes to the Superconducting Qubits research area in the Quantum Articles archive.
  • It adds a 2019 reference point for readers tracking recent quantum research.
  • We present a theoretical study of the interplay between topological p-wave superconductivity, orbital magnetic fields and quantum Hall phases in coupled wire systems.

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