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Levitated ferromagnetic magnetometer with energy resolution well below $\hbar$
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abstract
A quantum limit on the measurement of magnetic field has been recently pointed out, stating that the so-called Energy Resolution $E_\mathrm{R}$ is bounded to $E_\mathrm{R} \gtrsim \hbar$. This limit holds indeed true for the vast majority of existing quantum magnetometers, including SQUIDs, solid state spins and optically pumped atomic magnetometers. However, it can be surpassed by highly correlated spin systems, as recently demonstrated with a single-domain spinor Bose-Einstein Condensate. Here we show that similar and potentially much better resolution can be achieved with a hard ferromagnet levitated above a superconductor at cryogenic temperature. We demonstrate $E_\mathrm{R}=\left( 0.064 \pm 0.010 \right) \, \hbar$ and anticipate that $E_\mathrm{R}<10^{-3} \, \hbar$ is within reach with near-future improvements. This finding opens the way to new applications in condensed matter, biophysics and fundamental science. In particular, we propose an experiment to search for axionlike dark matter and project a sensitivity orders of magnitude better than in previous searches.
Forward citations
Cited by 3 Pith papers
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Levitated Sensor for Magnetometry in Ambient Environment
A diamagnetically stabilized levitated magnet, read out optically, achieves 32 fT/√Hz magnetic field sensitivity at room temperature and in ambient magnetic fields.
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Strong coupling and dark modes in the motion of a pair of levitated nanoparticles
Two optically trapped nanoparticles show cavity-mediated strong coupling with about 1 kHz splittings and a dark upper branch, verified by tuned avoided crossings.
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Probing the Quantum Nature of Gravity through Classical Diffusion
A classical local gravitational interaction necessarily causes momentum diffusion in quantum matter, and the required minimum diffusion could be detected by a millikelvin torsion pendulum.
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