Decoherence effects in quantum nondemolition measurement induced
entanglement between Bose-Einstein condensates
- URL: http://arxiv.org/abs/2110.08990v2
- Date: Mon, 4 Jul 2022 12:12:08 GMT
- Title: Decoherence effects in quantum nondemolition measurement induced
entanglement between Bose-Einstein condensates
- Authors: Shuai Gao, Ebubechukwu O. Ilo-Okeke, Yuping Mao, Manikandan Kondappan,
Juan E. Aristizabal-Zuluaga, Valentin Ivannikov, and Tim Byrnes
- Abstract summary: We study the robustness of quantum nondemolition (QND) measurement-induced entanglement between Bose-Einstein Condensates (BECs)
We analyze the two dominant channels of decoherence, atomic dephasing and photon loss on the entangled states produced by this scheme.
- Score: 3.6827848089389486
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We study the robustness of quantum nondemolition (QND) measurement-induced
entanglement between Bose-Einstein Condensates (BECs). We consider an
experimental scheme where two BECs are placed in the paths of a Mach-Zehnder
interferometer, and a QND interaction creates entanglement between coherent
light and the atoms. We analyze the two dominant channels of decoherence,
atomic dephasing and photon loss on the entangled states produced by this
scheme. We calculate the effect of dephasing on the variance and expectation
values of the spin operators, entanglement, and correlation criteria. Our
analysis does not use the Holstein-Primakoff approximation and is capable of
modeling long light-atom interaction times, producing non-Gaussian states
beyond the two-mode squeezed states. In the presence of dephasing, the
entangled states are robust in the macroscopic limit as long as the
dimensionless interaction time is less than $ 1/\sqrt{N}$, where $ N $ is the
number of atoms in the BEC. For photon loss, the entangled states generated by
long interaction times show remarkable robustness that makes the scheme
promising for various quantum information applications.
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