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Quantum Simulation
Universal Spin-Position Coupled Rydberg Interactions
arXiv
Authors: Chengshu Li, Hui Zhai
Year
2026
Paper ID
76425
Status
Preprint
Abstract Read
~2 min
Abstract Words
172
Citations
N/A
Abstract
Strong interactions between s-orbital Rydberg atoms underpin atom-array-based quantum computation and quantum simulation. Typically, the spin dependence of these interactions is negligible and plays no practical role. In this Letter, we uncover that a strong electron-spin-dependent Rydberg interaction can emerge when the principal quantum numbers of the two s-orbital atoms differ by a sweet-spot value. This interaction originates from the fine-structure splitting of nearby p orbitals, which endows it with distinct symmetry properties such that the electron spins are coupled to the relative position of the two atoms, featuring a spatially defined anisotropy. We further demonstrate that this interaction admits a universal form, independent of the principal quantum numbers, and highlight its fundamental distinction from conventional magnetic dipolar interactions, establishing it as a new type of native magnetic interaction in nature. Our findings introduce a new element to the Rydberg quantum simulation toolbox. As a concrete application, we propose a native realization of the Kitaev-Heisenberg model, which hosts an unusual stripe phase as a quantum many-body manifestation of spin-space locking.
Why This Paper Matters
- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Strong interactions between s-orbital Rydberg atoms underpin atom-array-based quantum computation and quantum simulation.
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