Hyperfine-State Coherence in the Presence of Spontaneous Photon Scattering
ORAL
Abstract
Hyperfine-state superpositions are important to many atomic physics applications and experiments. In many of these experiments, off-resonance laser light is used either to manipulate or trap atoms. Spontaneous scattering of photons can therefore play an important role in hyperfine-state decoherence. We study experimentally the coherence of a hyperfine-state of a trapped $^9$Be$^+$ ion, in the presence of off-resonance light. It is shown that it is only Raman spontaneous scattering of photons which affects coherence. Raman scattering of photons is largely suppressed at a laser detuning which is much larger than the fine-splitting of the excited state. Coherence times that exceed the average scattering time of 19 photons are measured. This result implies that laser light can be used to manipulate hyperfine-state superpositions with very small decoherence.
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Authors
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R. Ozeri
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C. Langer
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J.D. Jost
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B.L. DeMarco
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A. Ben-Kish
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R.B. Blakestad
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J. Britton
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J. Chiaverini
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D. Hume
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W.M. Itano
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D. Leibfried
National Institute of Standards and Technology, Boulder, Colorado 80305, USA
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R. Reichle
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T. Rosenband
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P. Schmidt
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D.J. Wineland
Time \& Frequency Division, NIST, 325 Broadway, Boulder CO 80305