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Phase-coherent detection of an optical dipole force by Doppler velocimetry

Quantum Physics 2015-05-27 v2 Atomic Physics Optics

Abstract

We report phase-coherent Doppler detection of optical dipole forces using large ion crystals in a Penning trap. The technique is based on laser Doppler velocimetry using a cycling transition in 9^{9}Be+^{+} near 313 nm and the center-of-mass (COM) ion motional mode. The optical dipole force is tuned to excite the COM mode, and measurements of photon arrival times synchronized with the excitation potential show oscillations with a period commensurate with the COM motional frequency. Experimental results compare well with a quantitative model for a driven harmonic oscillator. This technique permits characterization of motional modes in ion crystals; the measurement of both frequency and phase information relative to the driving force is a key enabling capability -- comparable to lockin detection -- providing access to a parameter that is typically not available in time-averaged measurements. This additional information facilitates discrimination of nearly degenerate motional modes.

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Cite

@article{arxiv.1103.3334,
  title  = {Phase-coherent detection of an optical dipole force by Doppler velocimetry},
  author = {M. J. Biercuk and H. Uys and J. W. Britton and A. P. VanDevender and J. J. Bollinger},
  journal= {arXiv preprint arXiv:1103.3334},
  year   = {2015}
}

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