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轨道角动量向声涡光束中稳定俘获的弹性粒子的传递。

Orbital Angular Momentum Transfer to Stably Trapped Elastic Particles in Acoustical Vortex Beams.

机构信息

Sorbonne Université, CNRS UMR 7588, Institut des NanoSciences de Paris, INSP, F-75005 Paris, France.

Sorbonne Université, CNRS UMR 7190, Institut Jean le Rond d'Alembert, F-75005 Paris, France.

出版信息

Phys Rev Lett. 2018 Aug 17;121(7):074301. doi: 10.1103/PhysRevLett.121.074301.

DOI:10.1103/PhysRevLett.121.074301
PMID:30169074
Abstract

The controlled rotation of solid particles trapped in a liquid by an ultrasonic vortex beam is observed. Single polystyrene beads, or clusters, can be trapped against gravity while simultaneously rotated. The induced rotation of a single particle is compared to a torque balance model accounting for the acoustic response of the particle. The measured torque (∼10  pN m for a driving acoustic power ∼40  W/cm^{2}) suggests two dominating dissipation mechanisms of the acoustic orbital angular momentum responsible for the observed rotation. The first takes place in the bulk of the absorbing particle, while the second arises as dissipation in the viscous boundary layer in the surrounding fluid. Importantly, the dissipation processes affect both the dipolar and quadrupolar particle vibration modes suggesting that the restriction to the well-known Rayleigh scattering regime is invalid to model the total torque even for spheres much smaller than the sound wavelength. The findings show that a precise knowledge of the probe elastic absorption properties is crucial to perform rheological measurements with maneuverable trapped spheres in viscous liquids. Further results suggest that the external rotational steady flow must be included in the balance and can play an important role in other liquids.

摘要

观察到在超声涡旋光束中被捕获的固体颗粒在液体中的受控旋转。单个聚苯乙烯珠或珠簇可以抵抗重力而同时旋转。与考虑颗粒的声响应的转矩平衡模型相比,单个颗粒的感应旋转。测量的扭矩(对于驱动声功率约为 40 W/cm^{2},约为 10 pN·m)表明,负责观察到的旋转的声轨道角动量的两个主要耗散机制。第一个发生在吸收颗粒的主体中,而第二个是由于周围流体中的粘性边界层中的耗散而产生的。重要的是,耗散过程影响偶极子和四极子颗粒振动模式,这表明即使对于远小于声波波长的球体,限制在著名的瑞利散射范围内的模型也不能用于模拟总扭矩。研究结果表明,精确了解探针弹性吸收特性对于在粘性液体中使用可操纵的捕获球体进行流变测量至关重要。进一步的结果表明,外部旋转稳态流必须包含在平衡中,并且在其他液体中可能发挥重要作用。

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