Strong Spin-Motion Coupling in the Ultrafast Quantum Many-body Dynamics of Rydberg Atoms in a Mott-insulator Lattice
ORAL
Abstract
Rydberg atoms in optical lattices and tweezers is now a well established platform for simulating quantum spin systems. However, the possible role of the atoms' spatial wavefunction has not been examined in detail experimentally. Here, we show a strong spin-motion coupling emerging from the large variation of the interaction potential over the wavefunction spread. We observe its clear signature on the ultrafast, out-of-equilibrium, many-body dynamics of atoms excited to a Rydberg S state from an unity-filling atomic Mott-insulator. We also propose a novel approach to tune arbitrarily the strength of the spin-motion coupling relative to the motional energy scale set by trapping potentials. Our work provides a new direction for exploring the dynamics of strongly correlated quantum system by including the motional degree of freedom into the Rydberg simulation toolbox.
*This work was supported by MEXT Quantum Leap Flagship Program (MEXT Q-LEAP) JPMXS0118069021, JSPS Grant-in-Aid for Specially Promoted Research Grant No. 16H06289 and JST Moonshot R&D Program Grant Number JPMJMS2269.
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Publication: Vineet et. al, (in prep, 2023)
Presenters
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Sylvain DE LESELEUC
- Institute for Molecular Science. NINS. Japan