4.8 Article

Ultrasensitive Magnetometer using a Single Atom

期刊

PHYSICAL REVIEW LETTERS
卷 116, 期 24, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.116.240801

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资金

  1. Career Integration Grant (CIG) IonQuanSense
  2. Israel Science Foundation [039-8823]
  3. Bundesministerium fur Bildung und Forschung [FK 01BQ1012]
  4. Alexander von Humboldt Professorship
  5. EU
  6. ERC Synergy grant BioQ

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Precision sensing, and in particular high precision magnetometry, is a central goal of research into quantum technologies. For magnetometers, often trade-offs exist between sensitivity, spatial resolution, and frequency range. The precision, and thus the sensitivity of magnetometry, scales as 1/root T-2 with the phase coherence time T-2 of the sensing system playing the role of a key determinant. Adapting a dynamical decoupling scheme that allows for extending T-2 by orders of magnitude and merging it with a magnetic sensing protocol, we achieve a measurement sensitivity even for high frequency fields close to the standard quantum limit. Using a single atomic ion as a sensor, we experimentally attain a sensitivity of 4.6 pT/root Hz for an alternating-current magnetic field near 14 MHz. Based on the principle demonstrated here, this unprecedented sensitivity combined with spatial resolution in the nanometer range and tunability from direct current to the gigahertz range could be used for magnetic imaging in as of yet inaccessible parameter regimes.

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