English

Current switching behavior mediated via hinge modes in higher-order topological phases using altermagnets

Mesoscale and Nanoscale Physics 2026-05-19 v2

Abstract

We propose a theoretical framework to engineer hybrid-order and higher-order topological phases in three-dimensional topological insulators by coupling to dd-wave altermagnets (AMs). Presence of only dx2y2d_{x^2-y^2}-type AM drives the system into a hybrid-order topological phase where both first-order and second-order topological phases coexist. This phase is characterized by spectral analysis, low-energy surface theory, dipolar and quadrupolar winding numbers, and it's signature is further confirmed by two-terminal differential conductance calculations. Incorporation of the dx2z2d_{x^2-z^2}-type AM drives the system into two second-order topological insulator phases hosting distinct type of hinge modes. These two variants of second-order topological phases are also topologically characterized by spectral analysis, topological invariants, low-energy surface thoery, and transport calculations. Importantly, the localization and direction of propagation of these one-dimensional hinge modes are controllable by tuning the relative strengths of the alermagnetic exchange orders. We utilize this feature to propose a tunable current-switching behaviour mediated via the hinge modes. Our results establish AMs based hybrid structure as a versatile platform for controllable higher-order topology and hinge-mediated device applications.

Keywords

Cite

@article{arxiv.2512.03478,
  title  = {Current switching behavior mediated via hinge modes in higher-order topological phases using altermagnets},
  author = {Minakshi Subhadarshini and Amartya Pal and Arijit Saha},
  journal= {arXiv preprint arXiv:2512.03478},
  year   = {2026}
}

Comments

This is the published version

R2 v1 2026-07-01T08:07:09.362Z