Pattern-dependent proximity effect and Majorana edge mode in one-dimensional quasicrystals
Junmo Jeon, SungBin Lee

TL;DR
This paper investigates how quasi-periodic patterns in one-dimensional Kitaev chains influence the superconducting proximity effect and the stability of Majorana edge modes, revealing pattern-dependent behaviors and enhanced mode stability.
Contribution
It introduces the concept of pattern-dependent proximity effects in quasi-periodic Kitaev chains and demonstrates their impact on Majorana mode stability and transfer.
Findings
Quasi-periodic hoppings induce quasi-periodic p-wave pairing.
Majorana modes transfer to the normal metallic edge with increased stability.
Proximity effects follow a power-law relationship depending on the pattern.
Abstract
The Majorana edge states of the Kitaev chain model have attracted extensive attention on their stability and experimental realization. One of the interesting aspects is finding the exotic proximity effect, which guarantees the presence of the Majorana modes, further enables efficient braidings between them. In this paper, we explore the superconducting proximity effect for quasi-periodic quantum wires and discuss how quasi-periodic patterns affect the stability of the Majorana modes. Considering the Kitaev chain model of the one-dimensional quasi-periodic system, we discuss the pattern-dependent proximity effects. First, we argue that the presence of quasi-periodic hoppings energetically induces the -wave pairing also to be quasi-periodic rather than uniform pairing. More interestingly, when the normal metallic wire is adjacent to the quasiperiodic superconducting wire, we have found…
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Taxonomy
TopicsTopological Materials and Phenomena · Advanced Condensed Matter Physics · Rare-earth and actinide compounds
