Magnetic manipulation of topological states in p-wave superconductors
arXiv:1710.05567 · doi:10.1016/j.physb.2017.11.007
Abstract
Substantial experimental investigation has provided evidence for spin-triplet pairing in diverse classes of materials and in a variety of artificial heterostructures. A fundamental challenge in actual experiments is how to manipulate the topological behavior of -wave superconductors (PSCs) that could open perspectives for applications. Such a control knob is naturally provided by the spin-triplet character of the PSC order parameter, described by the spin d-vector. Therefore, in this work we investigate the magnetic field response of one-dimensional (1d) PSCs and demonstrate that the structure of the Cooper pair spin-configuration is crucial to set topological phases with an enhanced number of Majorana fermions per edge, N, ranging from N=0 to 4. The topological phase diagram, consisting of phases with Majorana modes at the edge, becomes significantly modified when one tunes the strength of the applied field and allows for long range hopping amplitudes in the 1d PSC. We find transitions between phases with different number of Majorana fermions per edge that can be both induced by a variation of the hopping strength and a spin rotation of the d-vector. Hence, the interplay of the applied magnetic field and the internal spin degree of freedom of the PSC opens a new promising route for engineering topological phases with large number of Majorana modes.
5 pages, 3 figures
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Cited by in corpus (12)
- Synthetic Weyl Points and Chiral Anomaly in Majorana Devices with Nonstandard Andreev-Bound-State Spectra
- Nodal Andreev Spectra in Multi-Majorana Three-Terminal Josephson Junctions
- Magnetoelectrically-Tunable Andreev-Bound-State Spectra and Spin Polarization in P-Wave Josephson Junctions
- Spin-orbital polarization of Majorana edge states in oxides nanowires
- High orbital-moment Cooper pairs by crystalline symmetry breaking
- Topological signatures of the coexistence of antiferromagnetism and odd-parity spin-triplet superconductivity
- Inverse Proximity Effects at Spin-Triplet Superconductor-Ferromagnet Interface
- Odd-frequency pairing in a nonunitary p-wave superconductor with multiple Majorana fermions
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- Topological phase transitions in superconductors with chiral symmetry
- Magnetic exchange interaction in spin-valve with chiral spin-triplet superconductor
- Particle-hole spectral asymmetry at the edge of multiorbital noncentrosymmetric superconductors