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    Majorana Edge Modes in Isolated Wires

    Jaden Thomas-Markarian1,2,*, Kartiek Agarwal3,†, and Ivar Martin2,3,‡

    • *Contact author: jthomasm@mit.edu
    • †Contact author: kagarwal@anl.gov
    • ‡Contact author: ivar@anl.gov

    Phys. Rev. Lett. 137, 086504 – Published 18 August, 2026

    DOI: https://doi.org/10.1103/97fb-45n9

    Abstract

    Topological superconductors are believed to host exotic quasiparticle excitations known as Majorana zero modes (MZMs), with much of the evidence based on BCS mean-field theory. The direct application of mean-field arguments is tenuous in finite, isolated systems relevant in some experiments. Here, we develop a new correlation-based method for identifying MZMs in interacting, number-conserving systems. Using the density matrix renormalization group, we study fermion number-conserving models with long-range interactions, which under periodic boundary conditions exhibit robust topological and nontopological superconductivity, tuned by the strength of interaction [Ortiz et al., Phys. Rev. Lett. 113, 267002 (2014)]. We find evidence that, on the topological side, Majorana edge modes appear in open chains, manifesting as the vanishing of the energy splitting between odd- and even-parity ground states with increasing system size. Additionally, off-diagonal two-point correlation functions show nonlocal, parity-dependent edge effects. These correlations reveal the spatial structure of Majorana modes in the many-body wave function. We show that the correlation diagnostic applies broadly, including to short-range interacting models, where topological superconductivity is more fragile due to the absence of a bulk excitation gap.

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