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Realizing distance-selective interactions in a Rydberg-dressed atom array

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arxiv 2110.10125 v1 pith:5ZE7E7V7 submitted 2021-10-19 cond-mat.quant-gas physics.atom-phquant-ph

classification cond-mat.quant-gasphysics.atom-phquant-ph
keywords interactionsatomentanglementquantumrydbergcouplingcreationdistance-selective
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Measurement-based quantum computing relies on the rapid creation of large-scale entanglement in a register of stable qubits. Atomic arrays are well suited to store quantum information, and entanglement can be created using highly-excited Rydberg states. Typically, isolating pairs during gate operation is difficult because Rydberg interactions feature long tails at large distances. Here, we engineer distance-selective interactions that are strongly peaked in distance through off-resonant laser coupling of molecular potentials between Rydberg atom pairs. Employing quantum gas microscopy, we verify the dressed interactions by observing correlated phase evolution using many-body Ramsey interferometry. We identify atom loss and coupling to continuum modes as a limitation of our present scheme and outline paths to mitigate these effects, paving the way towards the creation of large-scale entanglement.

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  1. Enhancement of Rydberg Blockade via Microwave Dressing

    physics.atom-ph 2024-11 conditional novelty 6.0 of 10

    Microwave dressing of 87Rb Rydberg atoms strengthens effective interactions, lowering the photon-correlation g(2)(0) and increasing the blockade radius in an ensemble single-photon source.

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