Entanglement transport and a nanophotonic interface for atoms in optical tweezers
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2105.06485.pdf
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Accepted version
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Author(s) • • • • • • •
Ðorđević, Tamara
Samutpraphoot, Polnop
Ocola, Paloma L
Bernien, Hannes
Grinkemeyer, Brandon
Dimitrova, Ivana
Vuletić, Vladan
Lukin, Mikhail D
Date Issued
2021
Journal
Science
Publisher
American Association for the Advancement of Science (AAAS)
Citation
Ðorđević, Tamara, Samutpraphoot, Polnop, Ocola, Paloma L, Bernien, Hannes, Grinkemeyer, Brandon et al. 2021. "Entanglement transport and a nanophotonic interface for atoms in optical tweezers." Science, 373 (6562).
Version
Author's final manuscript
Abstract
Quantum trapping and shuffling
Programmable arrays of atoms or ions trapped in optical potentials have recently emerged as a leading platform for quantum simulation. Being able to interface into these arrays to access the quantum information being processed and pass it along to another module remains a challenge. Ðorđević et al . developed a hybrid quantum system that combines atoms held in optical tweezers and a nanophotonic cavity to demonstrate full quantum control, efficient quantum nondestructive readout, and entanglement of atom pairs (see the Perspective by Kaufman). By combining atomic manipulation both inside and away from the cavity field and shuffling the atom qubits into and out of the cavity mode, the authors demonstrate a viable optical interface that could be scaled to larger systems. —ISO
Programmable arrays of atoms or ions trapped in optical potentials have recently emerged as a leading platform for quantum simulation. Being able to interface into these arrays to access the quantum information being processed and pass it along to another module remains a challenge. Ðorđević et al . developed a hybrid quantum system that combines atoms held in optical tweezers and a nanophotonic cavity to demonstrate full quantum control, efficient quantum nondestructive readout, and entanglement of atom pairs (see the Perspective by Kaufman). By combining atomic manipulation both inside and away from the cavity field and shuffling the atom qubits into and out of the cavity mode, the authors demonstrate a viable optical interface that could be scaled to larger systems. —ISO
MIT Department
Massachusetts Institute of Technology. Department of Physics
Massachusetts Institute of Technology. Research Laboratory of Electronics
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DOI of Published Version
https://doi.org/10.1126/SCIENCE.ABI9917