Nanoscale addressing and manipulation of neutral atoms using electromagnetically induced transparency
ORAL
Abstract
We propose to integrate dark-state-based localization techniques into a neutral atom quantum computing architecture and numerically investigate two specific schemes. The first scheme implements state-selective projective measurement by scattering photons from a specific qubit with very little crosstalk on the other atoms in the ensemble. By exploiting the non-linearity of the Electromagnetically Induced Transparency effect, one can manipulate atoms on the optical lattice with a sub-wavelength resolution. The second scheme performs a single-qubit phase gate with high fidelity. Our numerical simulations in rubidium (Rb) atoms show that for both schemes a spatial resolution at the level of 10 nanometers using visible light can be achieved with experimentally realistic parameters.
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Publication: We plan to send a manuscript in a week to PRA. We can add that then.
Presenters
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Utku Saglam
University of Wisconsin - Madison
Authors
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Utku Saglam
University of Wisconsin - Madison
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Thad G Walker
Wisconsin, University of Wisconsin - Madison, University of Wisconsin-Madison
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Mark Saffman
University of Wisconsin - Madison; ColdQuanta, Inc., University of Wisconsin - Madison, University of Wisconsin-Madison, University of Wisconsin - Madison and ColdQuanta, Inc.
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Deniz D Yavuz
University of Wisconsin - Madison