Stroboscopic quantum nondemolition measurements for enhanced
entanglement generation between atomic ensembles
- URL: http://arxiv.org/abs/2110.09043v2
- Date: Tue, 1 Mar 2022 04:25:06 GMT
- Title: Stroboscopic quantum nondemolition measurements for enhanced
entanglement generation between atomic ensembles
- Authors: Manish Chaudhary, Yuping Mao, Manikandan Kondappan, Amiel S. P. Paz,
Valentin Ivannikov and Tim Byrnes
- Abstract summary: We develop a measurement operator formalism to handle quantum nondemolition (QND) measurement induced entanglement generation between two atomic gases.
We show several mathematical identities which greatly simplify the state evolution in the projection sequence.
Our formalism does not use the Holstein-Primakoff approximation as is conventionally done, and treats the spins of the atomic gases in an exact way.
- Score: 3.0734813171130204
- License: http://creativecommons.org/licenses/by-sa/4.0/
- Abstract: We develop a measurement operator formalism to handle quantum nondemolition
(QND) measurement induced entanglement generation between two atomic gases. We
first derive how the QND entangling scheme reduces to a positive
operator-valued measure, and consider its limiting case when it can be used to
construct a projection operator that collapses the state to a total spin
projection state. We then analyze how a stroboscopic sequence of such
projections made in the x and z basis evolves the initial wave function. Such a
sequence of QND projections can enhance the entanglement between the atomic
ensembles and makes the state converge towards a highly entangled state. We
show several mathematical identities which greatly simplify the state evolution
in the projection sequence and allow one to derive the exact state in a highly
efficient manner. Our formalism does not use the Holstein-Primakoff
approximation as is conventionally done, and treats the spins of the atomic
gases in an exact way.
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