paper

Majorana signatures in an asymmetrically coupled quantum dot--topological superconducting nanowire junction

arXiv:2608.26341

Abstract

We present a theoretical study of the quantum transport through a nanoscale system in which a central quantum dot (QD) is coupled asymmetrically to normal leads and to two Majorana bound states (MBSs) localized at the ends of a topological superconducting nanowire threaded by a tunable magnetic flux. The effects of the leads--QD coupling asymmetry parameter and the bias voltage asymmetry parameter on the system's linear conductance are considered for the case of unhybridized and hybridized MBSs. In the zero-temperature limit, for unhybridized MBSs the system's linear conductance is finite only when the magnetic flux phase () and it scales as , while for hybridized MBSs it presents a complicated dependence on the system's parameters. At finite temperature, for unhybridized MBSs, the system's linear conductance oscillates as a function of the magnetic flux phase with a period of , and the position of the linear conductance maxima can be shifted from to by simply varying the value of the bias voltage asymmetry parameter . For hybridized MBSs, the conductance exhibits a similar behavior when the energy level of the central QD, , is tuned at the leads' Fermi level (), although when the oscillation period changes to , and the position of the linear conductance maxima depends on the actual value of and other parameters in the system. Our results highlight the experimental importance of the leads-QD and bias voltage asymmetry parameters, which are often present in realistic experimental setups, and can strongly affect the identification and observation of MBSs transport signatures.

19 pages, 15 figures