Second-order topological superconductor via noncollinear magnetic texture
Abstract
We put forth a theoretical framework for engineering a two-dimensional (2D) second-order topological superconductor (SOTSC) by utilizing a heterostructure: incorporating noncollinear magnetic textures between an -wave superconductor and a 2D quantum spin Hall insulator. It stabilizes the higher order topological superconducting phase, resulting in Majorana corner modes (MCMs) at four corners of a 2D domain. The calculated non-zero quadrupole moment characterizes the bulk topology. Subsequently, through a unitary transformation, an effective low-energy Hamiltonian reveals the effects of magnetic textures, resulting in an effective in-plane Zeeman field and spin-orbit coupling. This approach provides a qualitative depiction of the topological phase, substantiated by numerical validation within exact real-space model. Analytically calculated effective pairings in the bulk illuminate the microscopic behavior of the SOTSC. The comprehension of MCM emergence is supported by a low-energy edge theory, which is attributed to the interplay between effective pairings of -type and -type. Our extensive study paves the way for practically attaining the SOTSC phase by integrating noncollinear magnetic textures.
Cite
@article{arxiv.2308.12703,
title = {Second-order topological superconductor via noncollinear magnetic texture},
author = {Pritam Chatterjee and Arnob Kumar Ghosh and Ashis K. Nandy and Arijit Saha},
journal= {arXiv preprint arXiv:2308.12703},
year = {2024}
}
Comments
This is the published version