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Micromotion minimisation by synchronous detection of parametrically excited motion

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arxiv 2107.00056 v1 pith:VJYRC7D6 submitted 2021-06-30 physics.atom-ph quant-ph

classification physics.atom-phquant-ph
keywords mathrmfieldsmotionamplitudefieldlasermicromotionmodulation
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abstract

Precise control of charged particles in radio-frequency (Paul) traps requires minimising excess micromotion induced by stray electric fields. We present a method to detect and compensate such fields through amplitude modulation of the radio-frequency trapping field. Modulation at frequencies close to the motional modes of the trapped particle excites coherent motion whose amplitude linearly depends on the stray field. In trapped-ion experiments, this motion can be detected by recording the arrival times of photons scattered during laser cooling. Only a single laser beam is required to resolve fields in multiple directions. In a demonstration using a $^{88}\mathrm{Sr}^{+}$ ion in a surface electrode trap, we achieve a sensitivity of $0.1\, \mathrm{V}\, \mathrm{m}^{-1}\, /\, \sqrt{\mathrm{Hz}}$ and a minimal uncertainty of $0.015\, \mathrm{V}\, \mathrm{m}^{-1}$.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A broadband, individually addressing two- and three-dimensional photonic integrated circuit for trapped-ion qubit control

    quant-ph 2026-07 conditional novelty 6.5 of 10

    A wafer-scale hybrid 2D–3D photonic circuit focuses 405–880 nm light onto three ion sites at 5 µm pitch with −27 dB average intensity crosstalk and shows selective Ca+ repumping.

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