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    Orbit-resolved spin holography: Role of Coulomb focusing in target-dependent polarization

    Tao Chen1,2, Yang Li1, Fang Liu1, Pei-Lun He1,*, Carla Figueira de Morisson Faria3,†, and Feng He1,2,‡

    • 1State Key Laboratory of Dark Matter Physics, Key Laboratory for Laser Plasmas (Ministry of Education), and School of Physics and Astronomy, Collaborative Innovation Center for IFSA, Shanghai Jiao Tong University, Shanghai 200240, China
    • 2Tsung-Dao Lee Institute, Shanghai Jiao Tong University, Shanghai 201210, China
    • 3Department of Physics and Astronomy, University College London, Gower Street, London WC1E 6BT, United Kingdom

    • *Contact author: peilunhe@sjtu.edu.cn
    • †Contact author: c.faria@ucl.ac.uk
    • ‡Contact author: fhe@sjtu.edu.cn

    Phys. Rev. A 114, 043105 – Published 7 October, 2026

    DOI: https://doi.org/10.1103/ggyg-2vr9

    Abstract

    Strong-field photoelectron holography encodes ultrafast electron dynamics through momentum-space interference. However, the orbit-resolved origin of spiderlike spin fringes and the mechanism underlying their target dependence remain unclear. Here we resolve both issues by analyzing photoelectron spin textures generated during tunneling ionization. We use the Coulomb quantum-orbit strong-field approximation, benchmarked against time-dependent Schrödinger equation simulations for He+ and Xe, to separate orbital-channel and quantum-orbit contributions. Spiderlike fringes arise from interference between p-orbital ionization channels with different magnetic quantum numbers within an individual orbit class and therefore do not require interorbit interference. The observable polarization along these fringes, however, depends on the balance among orbit-class contributions. The decomposition associates the opposite first-leg polarizations of He+ and Xe with different relative weights of laser-deflected and forward-scattered trajectories, consistent with target-dependent Coulomb focusing. Photoelectron spin textures thus complement momentum distributions as probes of Coulomb-driven strong-field dynamics.

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