English

Phase-Space Topology in a Single-Atom Synthetic Dimension

Quantum Physics 2026-01-13 v4 Atomic Physics

Abstract

We investigate topological features in the synthetic Fock-state lattice (FSL) of a single-atom system described by the quantum Rabi model. By diagonalizing the Hamiltonian, we identify a zero-energy defect state localized at a domain wall of the FSL, whose spin polarization is topologically protected. To address the challenge of applying band topology to the FSL, we introduce a physically motivated and directly measurable topological invariant based on phase-space geometry-the phase-space winding number. We show that the Zak phase, computed using a phase-space parameter, is related to the invariant. This quantized geometric phase reflects the spin polarization of the defect state, demonstrating a bulk-boundary correspondence. The resulting phase-space topology reveals the emergence of single-atom dressed states with contrasting properties-topologically protected spin states and driving-tunable bosonic states. Our results establish phase-space topology as a novel framework for exploring topological physics in single-atom synthetic dimensions, uncovering quantum-unique topological protection distinct from classical analogs.

Keywords

Cite

@article{arxiv.2506.24020,
  title  = {Phase-Space Topology in a Single-Atom Synthetic Dimension},
  author = {Kyungmin Lee and Sunkyu Yu and Jiyong Kang and Seungwoo Yu and Wonhyeong Choi and Daun Chung and Sumin Park and Taehyun Kim},
  journal= {arXiv preprint arXiv:2506.24020},
  year   = {2026}
}
R2 v1 2026-07-01T03:39:49.363Z