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Open Quantum Systems Decoherence

Ensemble master equation for a trapped-atom clock with one- and two-body losses

arXiv
Authors: Valentin Ivannikov

Year

2016

Paper ID

43521

Status

Preprint

Abstract Read

~2 min

Abstract Words

132

Citations

N/A

Abstract

An ensemble density matrix model that includes one- and two-body losses is derived for a trapped-atom clock. A trapped-atom clock is mainly affected by one- and two-body losses, generally giving nonexponential decays of populations; nevertheless, three-body recombination is also quantitatively analyzed to demonstrate the boundaries of its practical relevance. The importance of one-body losses is highlighted without which population trapping behavior would be observed. The model is written with decay constants expressed through experimental parameters. It can complement, e.g., the ISRE (identical spin rotation effect) model to improve its predictions: ISRE dramatically increases the ensemble coherence time, hence it enables one to observe the influence of two-body losses on the interferometry contrast envelope. The presented model is useful for Ramsey interferometry and is ready for immediate experimental verification in existing systems.

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  • This paper contributes to the Open Quantum Systems & Decoherence research area in the Quantum Articles archive.
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  • An ensemble density matrix model that includes one- and two-body losses is derived for a trapped-atom clock.

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