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耦合电旋转:两个相邻的微球与交流电场同步旋转。

Coupled electrorotation: two proximate microspheres spin in registry with an AC electric field.

作者信息

Simpson Garth J, Wilson Clyde F, Gericke Karl-Heinz, Zare Richard N

机构信息

Department of Chemistry, Purdue University, West Lafayette, IN 47907-1393, USA.

出版信息

Chemphyschem. 2002 May 17;3(5):416-23. doi: 10.1002/1439-7641(20020517)3:5<416::AID-CPHC416>3.0.CO;2-K.

Abstract

We report a novel approach to micro- and nanoparticle rotation, uniting the fine translational control afforded by optical trapping with the flexibility and simplicity of dipole-field-induced coupled electrorotation (CER). Fluorescence imaging using a microparticle photopatterning technique was combined with optical trapping to quantify both the senses and speeds of rotation for individual pairs of particles. Laser tweezers allowed controlled positioning of a pair of particles within a dipole field while simultaneously providing an axis about which the particles rotated. The particle-particle interactions inherent in CER offer several distinct advantages compared with electrorotation in multipole fields. Results from several investigations highlight the utility of this approach, including quantification of rotation in spheres as small as 750 nm in diameter, observation of rotation rates as high as 1800 rpm, fabrication of coupled electrorotational "antigears", trapping and rotation of sphere dimers, and exploitation of the registry of sphere rotation to probe the dielectric properties of immobile objects.

摘要

我们报告了一种用于微颗粒和纳米颗粒旋转的新方法,该方法将光学捕获所提供的精确平移控制与偶极场诱导耦合电旋转(CER)的灵活性和简单性相结合。使用微颗粒光图案化技术的荧光成像与光学捕获相结合,以量化单个颗粒对的旋转方向和速度。激光镊子允许在偶极场内对一对颗粒进行可控定位,同时提供颗粒围绕其旋转的轴。与多极场中的电旋转相比,CER中固有的颗粒间相互作用具有几个明显的优势。多项研究结果突出了这种方法的实用性,包括对直径小至750 nm的球体旋转进行量化、观察高达1800 rpm的旋转速率、制造耦合电旋转“反齿轮”、捕获和旋转球体二聚体,以及利用球体旋转的对齐方式来探测固定物体的介电特性。

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