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Long-Lived Circular Rydberg Qubits of Alkaline-Earth Atoms in Optical Tweezers

Published 19 Jan 2024 in physics.atom-ph, cond-mat.quant-gas, and quant-ph | (2401.10625v2)

Abstract: Coherence time and gate fidelities in Rydberg atom quantum simulators and computers are fundamentally limited by the Rydberg state lifetime. Circular Rydberg states are highly promising candidates to overcome this limitation by orders of magnitude, as they can be effectively protected from decay due to their maximum angular momentum. We report the first realization of alkaline-earth circular Rydberg atoms trapped in optical tweezers, which provide unique and novel control possibilities due to the optically active ionic core. Specifically, we demonstrate creation of very high-$n$ ($n=79$) circular states of ${88}$Sr. We measure lifetimes as long as 2.55 ms at room temperature, which are achieved via cavity-assisted suppression of black-body radiation. We show coherent control of a microwave qubit encoded in circular states of nearby manifolds, and characterize the qubit coherence time via Ramsey and spin-echo spectroscopy. Finally, circular state tweezer trapping exploiting the Sr$+$ core polarizability is quantified via measurements of the trap-induced light shift on the qubit. Our work opens routes for quantum simulations with circular Rydberg states of divalent atoms, exploiting the emergent toolbox associated with the optically active core ion.

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References (8)
  1. A. Browaeys and T. Lahaye, Many-body physics with individually controlled rydberg atoms, Nature Physics 16, 132 (2020).
  2. S. R. Cohen and J. D. Thompson, Quantum computing with circular rydberg atoms, PRX Quantum 2, 030322 (2021).
  3. M. A. Norcia, A. W. Young, and A. M. Kaufman, Microscopic control and detection of ultracold strontium in optical-tweezer arrays, Phys. Rev. X 8, 041054 (2018).
  4. R. G. Cortiñas, Laser trapped Circular Rydberg atoms for quantum simulation, Ph.D. thesis, Université Paris sciences et lettres (2020).
  5. T. K. Langin, G. M. Gorman, and T. C. Killian, Laser cooling of ions in a neutral plasma, Science 363, 61 (2019).
  6. M. Magoni, R. Joshi, and I. Lesanovsky, Molecular dynamics in rydberg tweezer arrays: Spin-phonon entanglement and jahn-teller effect, Phys. Rev. Lett. 131, 093002 (2023).
  7. S. Patsch, Control of Rydberg atoms for quantum technologies, Ph.D. thesis (2022).
  8. B. Knuffman and G. Raithel, Multipole transitions of rydberg atoms in modulated ponderomotive potentials, Physical Review A 75, 053401 (2007).
Citations (16)

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