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Sensing of Static Forces with Free-Falling Nanoparticles
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abstract
Miniaturized mechanical resonators have proven to be excellent force sensors. However, they usually rely on resonant sensing schemes, and their excellent performance cannot be utilized for the detection of static forces. Here, we report on a novel static-force sensing scheme and demonstrate it using optically levitated nanoparticles in vacuum. Our technique relies on an off-resonant interaction of the particle with a weak static force, and a resonant read-out of the displacement caused by this interaction. We demonstrate a force sensitivity of $10\,\mathrm{aN}$ to static gravitational and electric forces acting on the particle. Our work not only provides a tool for the closer investigation of short-range forces, but also marks an important step towards the realization of matter-wave interferometry with macroscopic objects.
Forward citations
Cited by 2 Pith papers
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Trap-to-trap free falls with an optically levitated nanoparticle
An optically levitated silica nanoparticle was released, fell freely for up to 0.25 ms under gravity, was recaptured by a second optical tweezer, and showed an approximately 190-fold growth in position uncertainty.
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Release and Recapture of Silica Nanoparticles from an Optical Trap in Weightlessness
The first levitated-optomechanics experiment in microgravity keeps a 140 nm silica bead trapped during free fall, and releases and recaptures it with trajectories matching a force-free prediction.
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