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DOE OSTI · 3000219

The Noncollinear Path to Two-Dimensional Topological Superconductivity

Abstract

Two-dimensional magnet-superconductor hybrids (2D-MSH) are promising candidates to realize devices for topology-based quantum technologies and superconducting spintronics. So far, studies have focused on 2D-MSH systems with collinear ferro- or antiferromagnetic layers. Here, we present the discovery of topological superconductivity in a noncollinear MSH system where a magnetic spiral is realized in an Fe monolayer proximity coupled to a superconducting Ta(110) substrate. By combining low-temperature spin-polarized scanning tunneling spectroscopy with an in-depth theoretical study, we can conclude that the system is in a topological nodal-point superconducting phase with low-energy edge modes. Furthermore, we reveal that for this noncollinear spin texture, these edge modes exhibit a magnetization direction-dependent dispersion. This means that a spatial shift of the magnetic spiral could be used to reverse the chirality of an edge mode in future MSH-based devices.

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BibTeXRIS

Brüning, Reiner [Univ. of Hamburg (Germany)], Bedow, Jasmin [Univ. of Illinois, Chicago, IL (United States)] (ORCID:0000000220108567), Lo Conte, Roberto [Univ. of Hamburg (Germany); Univ. of Groningen (Netherlands)] (ORCID:0000000250509978), von Bergmann, Kirsten [Univ. of Hamburg (Germany)] (ORCID:0000000245143254), Morr, Dirk K. [Univ. of Illinois, Chicago, IL (United States)], Wiesendanger, Roland [Univ. of Hamburg (Germany)]. 2025-10-09. The Noncollinear Path to Two-Dimensional Topological Superconductivity. https://doi.org/10.1021/acsnano.5c07565

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