Parity independence of the zero-bias conductance peak in a nanowire based topological superconductor-quantum dot hybrid device.

Mingtang Deng, Chunlin Yu, Guangyao Huang, Marcus Larsson, Philippe Caroff, Hongqi Xu

Research output: Contribution to journalArticlepeer-review

Abstract

We explore the signatures of Majorana fermions in a nanowire based topological superconductor-quantum dot-topological superconductor hybrid device by charge transport measurements. At zero magnetic field, well-defined Coulomb diamonds and the Kondo effect are observed. Under the application of a finite, sufficiently strong magnetic field, a zero-bias conductance peak structure is observed. It is found that the zero-bias conductance peak is present in many consecutive Coulomb diamonds, irrespective of the even-odd parity of the quasi-particle occupation number in the quantum dot. In addition, we find that the zero-bias conductance peak is in most cases accompanied by two differential conductance peaks, forming a triple-peak structure, and the separation between the two side peaks in bias voltage shows oscillations closely correlated to the background Coulomb conductance oscillations of the device. The observed zero-bias conductance peak and the associated triple-peak structure are in line with Majorana fermion physics in such a hybrid topological system.
Original languageEnglish
Article number7261
JournalScientific Reports
Volume4
DOIs
Publication statusPublished - 2014

Subject classification (UKÄ)

  • Condensed Matter Physics (including Material Physics, Nano Physics)

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