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通过光辐射压力对固定介电液滴进行拉伸和挤压。

Stretching and squeezing of sessile dielectric drops by the optical radiation pressure.

作者信息

Chraïbi Hamza, Lasseux Didier, Arquis Eric, Wunenburger Régis, Delville Jean-Pierre

机构信息

Transferts, Ecoulements, Fluides, Energétique (UMR CNRS 8508), Université Bordeaux I, Esplanade des Arts et Métiers, 33405 Talence Cedex, France.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2008 Jun;77(6 Pt 2):066706. doi: 10.1103/PhysRevE.77.066706. Epub 2008 Jun 17.

DOI:10.1103/PhysRevE.77.066706
PMID:18643396
Abstract

We study numerically the deformation of sessile dielectric drops immersed in a second fluid when submitted to the optical radiation pressure of a continuous Gaussian laser wave. Both drop stretching and drop squeezing are investigated at steady state where capillary effects balance the optical radiation pressure. A boundary integral method is implemented to solve the axisymmetric Stokes flow in the two fluids. In the stretching case, we find that the drop shape goes from prolate to near-conical for increasing optical radiation pressure whatever the drop to beam radius ratio and the refractive index contrast between the two fluids. The semiangle of the cone at equilibrium decreases with the drop to beam radius ratio and is weakly influenced by the index contrast. Above a threshold value of the radiation pressure, these "optical cones" become unstable and a disruption is observed. Conversely, when optically squeezed, the drop shifts from an oblate to a concave shape leading to the formation of a stable "optical torus." These findings extend the electrohydrodynamics approach of drop deformation to the much less investigated "optical domain" and reveal the openings offered by laser waves to actively manipulate droplets at the micrometer scale.

摘要

我们通过数值方法研究了在连续高斯激光波的光辐射压力作用下,浸没在第二种流体中的静止介电液滴的变形情况。在毛细管效应与光辐射压力达到平衡的稳态下,研究了液滴的拉伸和挤压过程。采用边界积分方法求解两种流体中的轴对称斯托克斯流。在拉伸情况下,我们发现,无论液滴与光束半径之比以及两种流体之间的折射率对比度如何,随着光辐射压力的增加,液滴形状从长球形变为近锥形。平衡时圆锥的半角随液滴与光束半径之比减小,且受折射率对比度的影响较弱。当辐射压力超过阈值时,这些“光锥”变得不稳定并观察到破裂现象。相反,当受到光挤压时,液滴从扁球形转变为凹形,导致形成稳定的“光环面”。这些发现将液滴变形的电流体动力学方法扩展到了研究较少的“光学领域”,并揭示了激光波在微米尺度上主动操纵液滴的可能性。

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