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Single Sr Atoms in Optical Tweezer Arrays for Quantum Simulation

Atomic Physics 2025-12-23 v3 Quantum Gases Quantum Physics

Abstract

We report on the realization of a platform for trapping and manipulating individual 88^{88}Sr atoms in optical tweezers. A first cooling stage based on a blue shielded magneto-optical trap (MOT) operating on the 1S0^1S_0 -> 1P1^1P_1 transition at 461 nm enables us to trap approximately 4×1064\times 10^6 atoms at a temperature of 6.8 mK. Further cooling is achieved in a narrow-line red MOT using the 1S0^1S_0 -> 3P1^3P_1 intercombination transition at 689 nm, bringing 4×1054\times 10^5 atoms down to 5 μ\muK and reaching a density of 1010\approx 10^{10} cm3^{-3}. Atoms are then loaded into 813 nm tweezer arrays generated by crossed acousto-optic deflectors and tightly focused onto the atoms with a high-numerical-aperture objective. Through light-assisted collision processes we achieve the collisional blockade, which leads to single-atom occupancy with a probability of about 50%50\%. The trapped atoms are detected via fluorescence imaging with a fidelity of 99.986(6)%99.986(6)\%, while maintaining a survival probability of 97(2)%97(2)\%. The release-and-recapture measurement provides a temperature of 12.92(5)12.92(5) μ\muK for the atoms in the tweezers, and the ultra-high-vacuum environment ensures a vacuum lifetime higher than 7 min. These results demonstrate a robust alkaline-earth tweezer platform that combines efficient loading, cooling, and high-fidelity detection, providing the essential building blocks for scalable quantum simulation and quantum information processing with Sr atoms.

Keywords

Cite

@article{arxiv.2510.19816,
  title  = {Single Sr Atoms in Optical Tweezer Arrays for Quantum Simulation},
  author = {Veronica Giardini and Luca Guariento and Andrea Fantini and Shawn Storm and Massimo Inguscio and Jacopo Catani and Giacomo Cappellini and Vladislav Gavryusev and Leonardo Fallani},
  journal= {arXiv preprint arXiv:2510.19816},
  year   = {2025}
}

Comments

Version of record as published in MDPI Atoms 14 (1), 1 (2026)

R2 v1 2026-07-01T07:00:17.067Z