English

Magnetically assisted spin-resolved electron diffraction: Coherent control of spin population and spatial filtering

Quantum Physics 2026-03-11 v2

Abstract

Electron diffraction from nanogratings provides a platform for free-electron interferometry, yet controlled manipulation of electron spin in such geometries remains largely unexplored. In particular, the role of the self-generated magnetic field arising from electron motion and the feasibility of coherent spin control without disrupting diffraction coherence have not been quantitatively investigated. In this article, a self-consistent Maxwell-Pauli framework is developed to study spin-resolved electron diffraction from nanogratings in the presence of magnetic fields. The model incorporates geometric confinement, image-charge interactions, self-generated magnetostatic fields, and externally applied magnetic fields. Numerical simulations show that the intrinsic magnetic self-field produced by the electron probability current is several orders of magnitude too weak to induce measurable spin mixing, demonstrating that nanogratings act as spin-conserving beam splitters under field-free conditions. When a uniform magnetic field is applied upstream of the nanograting, coherent Larmor precession enables controlled spin rotation without modifying the diffraction geometry or degrading coherence. The magnetic field required for a π\pi spin rotation scales inversely with the interaction length and electron de Broglie wavelength λdB\lambda_{dB}. Furthermore, a downstream nonuniform magnetic field applied after the nanograting imparts a spatially varying Zeeman phase, producing opposite transverse momentum shifts for the two spin components. The spin-dependent transverse dynamics is analyzed using Husimi Q-function phase-space maps, which visualize spin-dependent population redistribution and momentum separation. The proposed approach enables tunable spatial separation of spin-resolved free electron beams and establishes an all-magnetic route for coherent spin rotation, control, and interferometry.

Keywords

Cite

@article{arxiv.2602.15615,
  title  = {Magnetically assisted spin-resolved electron diffraction: Coherent control of spin population and spatial filtering},
  author = {Sushanta Barman and Kuldeep Godara and Sudeep Bhattacharjee},
  journal= {arXiv preprint arXiv:2602.15615},
  year   = {2026}
}

Comments

16 pages, 13 figures

R2 v1 2026-07-01T10:39:58.448Z