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Interplay between classical magnetic moments and superconductivity in quantum one-dimensional conductors: toward a self-sustained topological Majorana phase

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arxiv 1307.2431 v2 pith:WZZFQIBW submitted 2013-07-09 cond-mat.mes-hall cond-mat.str-el

classification cond-mat.mes-hallcond-mat.str-el
keywords magneticmomentsclassicalelectronicelectronsenoughliquidmajorana
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We study a one-dimensional (1D) interacting electronic liquid coupled to a 1D array of classical magnetic moments and to a superconductor. We show that at low energy and temperature the magnetic moments and the electrons become strongly entangled and that a magnetic spiral structure emerges without any adjustable parameters. For strong enough coupling between the two, the 1D electronic liquid is driven into a topological superconducting phase supporting Majorana fermions without any fine-tuning of external parameters. Our analysis applies at low enough temperature to a quantum wire in proximity of a superconductor when the hyperfine interaction between electrons and nuclear spins is taken into account or to a chain of magnetic adatoms adsorbed on a superconducting surface.

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  1. Magnetic-texture winding controls fermion-parity switches in an interacting $p$-wave magnet ring

    cond-mat.str-el 2026-07 conditional novelty 7.0 of 10

    Magnetic-texture winding M imposes an exact boundary phase shift πM on every fixed-particle-number level of an interacting ring, which reverses the fermion-parity assignment between adjacent winding branches in the to...

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