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Larmor frequency dressing by an anharmonic transverse magnetic field

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arxiv 1112.1309 v2 pith:RDEGUAGS submitted 2011-12-06 physics.atom-ph physics.class-ph

classification physics.atom-phphysics.class-ph
keywords fieldexperimentallarmormagneticmagnetometerprecessionresponsetransverse
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We present a theoretical and experimental study of spin precession in the presence of both a static and an orthogonal oscillating magnetic field, which is nonresonant, not harmonically related to the Larmor precession, and of arbitrary strength. Due to the intrinsic nonlinearity of the system, previous models that account only for the simple sinusoidal case cannot be applied. We suggest an alternative approach and develop a model that closely agrees with experimental data produced by an optical-pumping atomic magnetometer. We demonstrate that an appropriately designed nonharmonic field makes it possible to extract a linear response to a weak dc transverse field, despite the scalar nature of the magnetometer, which normally causes a much weaker, second-order response.

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  1. Sub-millimetric ultra-low-field MRI detected in situ by a dressed atomic magnetometer

    physics.app-ph 2019-08 conditional novelty 6.0 of 10

    A dressed atomic magnetometer detects in-situ ultra-low-field MRI signals from water phantoms, reaching sub-millimeter positional accuracy in one-dimensional images.

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