Altermagnetism Induced Bogoliubov Fermi Surfaces Form Topological Superconductivity

Fuente: arXiv
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Main Authors: Fu, Bo, Li, Chang-An, Trauzettel, Björn
Format: Preprint
Published: 2025
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author Fu, Bo
Li, Chang-An
Trauzettel, Björn
author_facet Fu, Bo
Li, Chang-An
Trauzettel, Björn
contents We propose a novel type of topological superconductivity based on Bogoliubov Fermi surfaces (BFSs) in an altermagnetic topological insulator proximitized by an s-wave superconductor. The 3D altermagnetic topological insulator is characterized by zero-energy surface states in bulk nodal-ring phases and anisotropically shifted surface Dirac cones in topological insulating phases. It is potentially realized in \mathrm{EuIn_{2}As_{2}}. The altermagnetic order in combination with superconductivity gives rise to highly anisotropic superconducting gaps with crystal-facet-dependent BFSs at the physical boundaries. These particular BFSs provide distinct platforms to realize Majorana zero modes (MZMs). We propose a quasi-1D nanowire in which the anisotropic BFSs experience topological phase transitions due to quantum confinement leading to MZMs at its ends. We further consider vortex phase transitions in the superconducting altermagnetic topological insulators. Remarkably, we find that the altermagnetic order allows us to transit between two distinct type of MZMs, one type is located at the vortex line, while the other type is located at the physical boundaries. Our work paves a new avenue utilizing altermagnetism-induced BFSs to engineer topological superconductivity through crystal anisotropy and quantum confinement.
format Preprint
id arxiv_https___arxiv_org_abs_2512_20049
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Altermagnetism Induced Bogoliubov Fermi Surfaces Form Topological Superconductivity
Fu, Bo
Li, Chang-An
Trauzettel, Björn
Superconductivity
Mesoscale and Nanoscale Physics
We propose a novel type of topological superconductivity based on Bogoliubov Fermi surfaces (BFSs) in an altermagnetic topological insulator proximitized by an s-wave superconductor. The 3D altermagnetic topological insulator is characterized by zero-energy surface states in bulk nodal-ring phases and anisotropically shifted surface Dirac cones in topological insulating phases. It is potentially realized in \mathrm{EuIn_{2}As_{2}}. The altermagnetic order in combination with superconductivity gives rise to highly anisotropic superconducting gaps with crystal-facet-dependent BFSs at the physical boundaries. These particular BFSs provide distinct platforms to realize Majorana zero modes (MZMs). We propose a quasi-1D nanowire in which the anisotropic BFSs experience topological phase transitions due to quantum confinement leading to MZMs at its ends. We further consider vortex phase transitions in the superconducting altermagnetic topological insulators. Remarkably, we find that the altermagnetic order allows us to transit between two distinct type of MZMs, one type is located at the vortex line, while the other type is located at the physical boundaries. Our work paves a new avenue utilizing altermagnetism-induced BFSs to engineer topological superconductivity through crystal anisotropy and quantum confinement.
title Altermagnetism Induced Bogoliubov Fermi Surfaces Form Topological Superconductivity
topic Superconductivity
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2512.20049