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Unveiling in-gap states and Majorana zero modes in superconductor-topological insulator bilayer model

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Abstract

Interfaces between topological insulators and superconductors (SCs) are promising platforms for realizing Majorana zero modes (MZMs) via the superconducting proximity effect. We introduce a bilayer model consisting of the surface states of a three-dimensional topological insulator (3DTI) coupled to an s-wave superconductor and systematically study the role of interlayer tunneling strength (t) motivated by the recent growth of the Fe(Te,Se)/Bi2Te3 heterostructure. We find that increasing t shifts the proximity-induced (PrI) gap minimum away from the Γ point, giving rise to momentum-selective interference patterns that manifest as spatial oscillations in the in-gap states. We introduce an antidot with a magnetic vortex in the model and investigate the resulting in-gap states, including MZMs and Caroli–de Gennes–Matricon (CdGM) modes. With increasing hybridization strength, the energy separation between MZMs and CdGM states increases, enhancing the isolation of MZMs. Importantly, in the strong hybridization limit, the leading CdGM separation remains large in spite of the decrease in the PrI gap. Spin- and spatially resolved wavefunction analysis reveals angular momentum asymmetries absent in conventional s-wave systems. A direct comparison with a standalone s-wave superconductor confirms the emergence of distinct p-wave-like features in the bilayer geometry. Our results provide experimentally relevant predictions for tuning the stability of MZMs and their differentiation from the CdGM modes in SC-3DTI heterostructures and offer a theoretical framework for probing unconventional superconductivity in engineered topological systems.

Original languageEnglish
Article number023061
JournalPhysical Review Research
Volume8
Issue number2
DOIs
StatePublished - Apr 1 2026

Funding

This work has been supported by the U.S. Department of Energy, Office of Science, National Quantum Information Sciences Research Centers, Quantum Science Center. We thank R. G. Moore, M. Papaj, and E. Dumitrescu for their useful discussions. This research used resources of the Compute and Data Environment for Science (CADES) at the Oak Ridge National Laboratory, which is supported by the Office of Science of the U.S. Department of Energy under Contract No. DE-AC05-00OR22725.

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