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Non-Majorana modes in diluted spin chains proximitized to a superconductor

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arxiv 2112.05708 v3 pith:K2DF3JDR submitted 2021-12-10 cond-mat.supr-con

Non-Majorana modes in diluted spin chains proximitized to a superconductor

classification cond-mat.supr-con
keywords modeschainsspinmajoranaproximitizeddilutedmechanismsplatforms
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Spin chains proximitized with superconducting condensates have emerged as one of the most promising platforms for the realization of Majorana modes. Here, we craft diluted spin chains atom-by-atom following seminal theoretical proposal suggesting indirect coupling mechanisms as a viable route to trigger topological superconductivity. Starting from single adatoms hosting deep Shiba states, we use the highly anisotropic Fermi surface of the substrate to create spin chains characterized by different magnetic configurations along distinct crystallographic directions. By scrutinizing a large set of parameters we reveal the ubiquitous emergence of boundary modes. Although mimicking signatures of Majorana modes, the end modes are identified as topologically trivial Shiba states. Our work demonstrates that zero-energy modes in spin chains proximitized to superconductors are not necessarily a link to Majorana modes while simultaneously identifying new experimental platforms, driving mechanisms, and test protocols for the determination of topologically non-trivial superconducting phases.

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