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arXiv · 2606.17849

Creating squeezed and non-classical collective motional many-body states through stroboscopic Rydberg dressing

Abstract

Realizing conditional quantum operations, e.g., quantum gates, for quantum computing and simulation requires controlled interactions between particles. Often, these interactions depend on the interparticle distance, and accordingly, an uncertainty of the relative particle position may translate into gate infidelities. We consider here a quantum computing platform based on an array of neutral atoms and present a method that allows to reduce the uncertainty of all interatomic distances. Our approach exploits the coupling between atomic motion and stroboscopically excited atomic Rydberg states. It allows to collectively squeeze the modes corresponding to interatomic displacements, thereby reducing distance fluctuations down to a fraction of the motional vacuum state. Furthermore, the method permits the creation of non-classical states with substantial Wigner negativity. These correlated states may allow reducing motional decoherence, increasing gate fidelity, and potentially yield a resource for quantum-enhanced metrology.

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Roman Wußler, Chris Nill, Sylvain de Léséleuc, Christian Groß, Igor Lesanovsky. 2026-06-16. Creating squeezed and non-classical collective motional many-body states through stroboscopic Rydberg dressing. https://arxiv.org/abs/2606.17849

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