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Ultrasensitive torque detection with an optically levitated nanorotor

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arxiv 1908.03453 v1 pith:ZDOKEN7Q submitted 2019-08-09 physics.app-ph physics.opticsquant-ph

Ultrasensitive torque detection with an optically levitated nanorotor

classification physics.app-ph physics.opticsquant-ph
keywords torquedetectionlevitatednanorotoropticallysensitivityapplicationscooling
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Torque sensors such as the torsion balance enabled the first determination of the gravitational constant by Cavendish and the discovery of Coulomb's law. Torque sensors are also widely used in studying small-scale magnetism, the Casimir effect, and other applications. Great effort has been made to improve the torque detection sensitivity by nanofabrication and cryogenic cooling. The most sensitive nanofabricated torque sensor has achieved a remarkable sensitivity of $10^{-24} \rm{Nm}/\sqrt{\rm{Hz}}$ at millikelvin temperatures in a dilution refrigerator. Here we dramatically improve the torque detection sensitivity by developing an ultrasensitive torque sensor with an optically levitated nanorotor in vacuum. We measure a torque as small as $(1.2 \pm 0.5) \times 10^{-27} \rm{Nm}$ in 100 seconds at room temperature. Our system does not require complex nanofabrication or cryogenic cooling. Moreover, we drive a nanoparticle to rotate at a record high speed beyond 5 GHz (300 billion rpm). Our calculations show that this system will be able to detect the long-sought vacuum friction near a surface under realistic conditions. The optically levitated nanorotor will also have applications in studying nanoscale magnetism and quantum geometric phase.

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