Quantum transport through a quantum dot side-coupled to a Majorana bound state pair in the presence of electron-phonon interaction
Levente M\'ath\'e, Doru Sticlet, and Liviu P. Z\^arbo

TL;DR
This paper investigates how electron-phonon interactions influence quantum transport in a quantum dot coupled to Majorana bound states within a topological superconductor, revealing flux periodicity changes that impact Majorana-based quantum computing readout.
Contribution
It introduces a theoretical analysis of phonon-assisted transport in Majorana-coupled quantum dots, highlighting flux periodicity shifts due to Majorana overlap and electron-phonon coupling effects.
Findings
Zero-temperature conductance remains 2π periodic with flux when Majoranas are unhybridized.
Finite Majorana overlap and electron-phonon coupling induce 4π periodicity in conductance.
Energy exchange with phonons significantly modifies Majorana transport signatures.
Abstract
We theoretically study quantum transport through a quantum dot coupled to Majorana bound states confined at the ends of a topological superconducting nanowire. The topological superconductor forms a loop and is threaded by a tunable magnetic flux, which allows one to control the electron transport in the system. In particular, we investigate phonon-assisted transport properties in the device when the central quantum dot interacts with a single long-wave optical phonon mode. We find that when the two Majorana bound states are unhybridized, the zero-temperature linear conductance has a periodicity as a function of magnetic flux phase, independent of the electron-phonon interaction, the quantum dot energy, or the finite values of dot-Majorana couplings. For a finite overlap between the Majorana bound states, the linear conductance periodicity generally changes to either due…
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