Majorana bound states and subgap states in three-terminal topological superconducting nanowire-quantum dot hybrid devices
Guang-Yao Huang, Xin Liu, and H. Q. Xu

TL;DR
This paper investigates the subgap states and Majorana bound states in three-terminal topological superconducting nanowire-quantum dot hybrid devices, revealing how quantum dot levels influence the energy spectrum and proposing models for braiding schemes.
Contribution
It introduces a detailed analysis of subgap states in three-terminal TSNW-QD devices and develops effective Hamiltonian models for these systems, advancing understanding of Majorana physics.
Findings
Existence of eight subgap states when QD level is near or inside the gap.
Four low energy subgap states are formed by Majorana bound states.
Identification of a unique parameter point where low energy states approach zero energy.
Abstract
Three-terminal topological superconducting nanowire (TSNW)-quantum dot (QD) hybrid junction devices are studied. The energy spectra and the wave functions of the subgap states are calculated as a function of the superconducting phase differences between TSNWs and as a function of the QD level energy based on the Bogoliubov-de Gennes tight-binding Hamiltonians. It is shown that when the QD level is located near or inside the superconducting gap, there can exist eight subgap states. Among them, four low energy (two positive and two negative) subgap states are essentially formed by linear combinations of the six Majorana bound states (MBSs) located at the ends of the three TSNWs. The remaining four high energy subgap states are mainly built from linear combinations of the QD state and the three MBSs of the TSNWs adjacent to the QD. When there is no QD level near or inside the…
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Taxonomy
TopicsTopological Materials and Phenomena · Physics of Superconductivity and Magnetism · Quantum and electron transport phenomena
