Numerical study of PbTe-Pb hybrid nanowires for engineering Majorana zero modes
Zhan Cao, Dong E. Liu, Wan-Xiu He, Xin Liu, Ke He, Hao Zhang

TL;DR
This study explores PbTe-Pb hybrid nanowires as promising candidates for Majorana zero modes, highlighting their high impurity tolerance, favorable electronic properties, and potential advantages over traditional InAs and InSb nanowires.
Contribution
The paper provides a theoretical validation of PbTe-Pb nanowires for Majorana devices, emphasizing their superior impurity tolerance and advantageous superconducting properties.
Findings
PbTe nanowires have high dielectric constant, reducing impurity effects.
PbTe-Pb nanowires exhibit comparable g-factor and spin-orbit coupling to InAs nanowires.
Topological phases are more accessible in PbTe due to multivalley structure.
Abstract
Epitaxial semiconductor-superconductor (SM-SC) hybrid nanowires are potential candidates for implementing Majorana qubits. Recent experimental and theoretical works show that charged impurities in SM remain a major problem in all existing hybrid nanowires, in which the SM is either InAs or InSb while the SC is mainly Al. Here, we theoretically validate the recently proposed PbTe-Pb hybrid nanowire as a potential candidate for Majorana devices. By studying the electrostatic and electronic properties of PbTe nanowires, we demonstrate that the huge dielectric constant of PbTe endows itself a high tolerance of charged impurity, which is a potential advantage over InAs and InSb nanowires. Moreover, we find that the effective axial Land\'{e} factor and Rashba spin-orbit coupling strength of PbTe nanowires are comparable to those of InAs nanowires. The conceivable merits of using Pb as the…
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Taxonomy
TopicsTopological Materials and Phenomena · Advanced Thermoelectric Materials and Devices · 2D Materials and Applications
