Unconventional topological transitions in a self-organized magnetic ladder
Maciej M. Ma\'ska, Nicholas Sedlmayr, Aksel Kobia{\l}ka, and Tadeusz, Doma\'nski

TL;DR
This paper reveals that topological phase transitions can occur without gap closing or symmetry change in a self-organized magnetic ladder system, driven by magnetic order changes affecting topological properties.
Contribution
It introduces an unconventional topological transition mechanism in a magnetic ladder system, where magnetic order changes induce topological phase shifts without gap closure.
Findings
Topological phase transitions without gap closing or symmetry change.
Emergence of time reversal asymmetry protecting Majorana modes.
Identification of topological invariant and boundary Majorana modes.
Abstract
It is commonly assumed that topological phase transitions in topological superconductors are accompanied by a closing of the topological gap or a change of the symmetry of the system. We demonstrate that an unconventional topological phase transition with neither gap closing nor a change of symmetry is possible. We consider a nanoscopic length ladder of atoms on a superconducting substrate, comprising self-organized magnetic moments coupled to itinerant electrons. For a range of conditions, the ground state of such a system prefers helical magnetic textures, self-sustaining topologically nontrivial phase. Abrupt changes in the magnetic order as a function of induced superconducting pairing or chemical potential can cause topological phase transitions without closing the topological gap. Furthermore, the ground state prefers either parallel or anti-parallel configurations along the…
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