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Enhancement of rotational vacuum friction by surface photon tunneling

Zhujing Xu, Zubin Jacob, Tongcang Li

2020Nanophotonics22 citationsDOIOpen Access PDF

Abstract

Abstract When a neutral sphere is rotating near a surface in vacuum, it will experience a frictional torque due to quantum and thermal electromagnetic fluctuations. Such vacuum friction has attracted many interests but has been too weak to be observed. Here we investigate the vacuum frictional torque on a barium strontium titanate (BST) nanosphere near a BST surface. BST is a perovskite ferroelectric ceramic that can have large dielectric responses at GHz frequencies. At resonant rotating frequencies, the mechanical energy of motion can be converted to electromagnetic energy through resonant photon tunneling, leading to a large enhancement of the vacuum friction. The calculated vacuum frictional torques at resonances at sub‐GHz and GHz frequencies are several orders larger than the minimum torque measured by an optically levitated nanorotor recently, and are thus promising to be observed experimentally. Moreover, we calculate the vacuum friction on a rotating sphere near a layered surface for the first time. By optimizing the thickness of the thin‐film coating, the frictional torque can be further enhanced by several times.

Topics & Concepts

Quantum tunnellingDielectricMaterials sciencePhotonTorqueStrontium titanateCondensed matter physicsVacuum energyPhysicsOpticsOptoelectronicsQuantum mechanicsMechanical and Optical ResonatorsQuantum Electrodynamics and Casimir EffectCold Atom Physics and Bose-Einstein Condensates
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