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arXiv · 2006.12237

Technique for rapid mass determination of airborne micro-particles based on release and recapture from an optical dipole force trap

Abstract

We describe a new method for the rapid determination of the mass of particles confined in a free-space optical dipole-force trap. The technique relies on direct imaging of drop-and-restore experiments without the need for a vacuum environment. In these experiments, the trapping light is rapidly shuttered with an acousto-optic modulator causing the particle to be released from and subsequently recaptured by the trapping force. The trajectories of both the falls and restorations, imaged using a high-speed CMOS sensor, are combined to determine the particle mass. We corroborate these measurements using an analysis of position autocorrelation functions of the trapped particles. We report a statistical uncertainty of less than 2% for masses on the order of $5\times10^{-14}$ kg using a data acquisition time of approximately 90 seconds.

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Gehrig Carlse, Kevin B. Borsos, Hermina C. Beica, Thomas Vacheresse, Alex Pouliot, Jorge Perez-Garcia, Andrejs Vorozcovs, Boris Barron, Shira Jackson, Louis Marmet, A. Kumarakrishnan. 2020-06-02. Technique for rapid mass determination of airborne micro-particles based on release and recapture from an optical dipole force trap. https://doi.org/10.1103/physrevapplied.14.024017

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