Photon-recoil and laser-focusing limits to Rydberg gate fidelity
POSTER
Abstract
Limits to Rydberg gate fidelity that arise from the entanglement of internal states of neutral atoms with the motional degrees of freedom due to the momentum kick from photon absorption and re-emission are quantified[1]. The Schrödinger equation that describes this situation is presented and two cases are explored. In the first case, the entanglement arises because the spatial wave function shifts due to the separation in time between excitation and stimulated emission. In the second case, there is a reduction in gate fidelity because the photons causing absorption and stimulated emission are in focused beam modes. This leads to a dependence of the optically induced changes in the internal states on the center of mass atomic position. In the limit where the time between pulses is short, the decoherence can be expressed as a simple analytic formula involving the laser waist, temperature of the atoms, the trap frequency, and the atomic mass. These limits on gate fidelity are studied for the standard π-2π-π Rydberg gate and a protocol based on a single adiabatic pulse with a Gaussian envelope. With realistic parameters and atoms cooled below 5 microK, entanglement fidelity better than 0.99 appears possible in a dense array of atomic qubits.
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Publication: 1. F. Robicheaux, T. M. Graham, and M. Saffman, Phys. Rev. A 103, 022424 (2021)
Presenters
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Trent Graham
University of Wisconsin - Madison, University of Wisconsin-Madison
Authors
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Francis J Robicheaux
Department of Physics and Astronomy, Purdue University, Indiana, USA, Purdue University, Purdue University, West Lafayette
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Trent Graham
University of Wisconsin - Madison, University of Wisconsin-Madison
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Mark Saffman
University of Wisconsin - Madison, University of Wisconsin - Madison and ColdQuanta, Inc., University of Wisconsin - Madison and ColdQuanta Inc., University of Wisconsin - Madison, ColdQuanta, Inc.