Coherent transport through a Majorana island in an Aharonov-Bohm interferometer
- A. M. Whiticar ,
- A. Fornieri ,
- Eoin O'Farrell ,
- A. C. C. Drachmann ,
- T. Wang ,
- C. Thomas ,
- Sergei Gronin ,
- Ray Kallaher ,
- Geoff Gardner ,
- Professor Michael J Manfra ,
- Charles Marcus ,
- Fabrizio Nichele
Nature Communications | , Vol 11(1): pp. 3212
Majorana zero modes are leading candidates for topological quantum computation due to non-local qubit encoding and non-abelian exchange statistics. Spatially separated Majorana modes are expected to allow phase-coherent single-electron transport through a topological superconducting island via a mechanism referred to as teleportation. Here we experimentally investigate such a system by patterning an elongated epitaxial InAs-Al island embedded in an Aharonov-Bohm interferometer. With increasing parallel magnetic field, a discrete sub-gap state in the island is lowered to zero energy yielding persistent 1e-periodic Coulomb blockade conductance peaks (e is the elementary charge). In this condition, conductance through the interferometer is observed to oscillate in a perpendicular magnetic field with a flux period of h/e (h is Planck’s constant), indicating coherent transport of single electrons through the islands, a signature of electron teleportation via Majorana modes. Theories predict teleportation of phase-coherent single electrons through a topological superconducting island. Here, the authors report persistent Coulomb blockade conductance peaks due to coherent transport of single electrons through patterned InAs-Al islands embedded in an Aharonov-Bohm interferometer.