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Trapped Ion Quantum Computing

Extreme non-linear response of ultra-narrow optical transitions in cavity QED for laser stabilization

arXiv
Authors: M. J. Martin, D. Meiser, J. W. Thomsen, Jun Ye, M. J. Holland

Year

2011

Paper ID

8850

Status

Preprint

Abstract Read

~2 min

Abstract Words

131

Citations

N/A

Abstract

We explore the potential of direct spectroscopy of ultra-narrow optical transitions of atoms localized in an optical cavity. In contrast to stabilization against a reference cavity, which is the approach currently used for the most highly stabilized lasers, stabilization against an atomic transition does not suffer from Brownian thermal noise. Spectroscopy of ultra-narrow optical transitions in a cavity operates in a very highly saturated regime in which non-linear effects such as bistability play an important role. From the universal behavior of the Jaynes-Cummings model with dissipation, we derive the fundamental limits for laser stabilization using direct spectroscopy of ultra-narrow atomic lines. We find that with current lattice clock experiments, laser linewidths of about 1 mHz can be achieved in principle, and the ultimate limitations of this technique are at the 1 μ Hz level.

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  • We explore the potential of direct spectroscopy of ultra-narrow optical transitions of atoms localized in an optical cavity.

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