光学镊子
辐射压力
旋转(数学)
粒子(生态学)
光学
纳米流体学
光子
分子物理学
激光器
光学力
物理
超短脉冲
纳米颗粒
光散射
梁(结构)
纺纱
材料科学
散射
纳米技术
海洋学
地质学
数学
复合材料
几何学
作者
Anni Lehmuskero,Robin Ogier,Tina Gschneidtner,Peter Johansson,Mikael Käll
出处
期刊:Nano Letters
[American Chemical Society]
日期:2013-06-18
卷期号:13 (7): 3129-3134
被引量:137
摘要
Controlling the position and movement of small objects with light is an appealing way to manipulate delicate samples, such as living cells or nanoparticles. It is well-known that optical gradient and radiation pressure forces caused by a focused laser beam enables trapping and manipulation of objects with strength that is dependent on the particle's optical properties. Furthermore, by utilizing transfer of photon spin angular momentum, it is also possible to set objects into rotational motion simply by targeting them with a beam of circularly polarized light. Here we show that this effect can set ∼200 nm radii gold particles trapped in water in 2D by a laser tweezers into rotation at frequencies that reach several kilohertz, much higher than any previously reported light driven rotation of a microscopic object. We derive a theory for the fluctuations in light scattering from a rotating particle, and we argue that the high rotation frequencies observed experimentally is the combined result of favorable optical particle properties and a low local viscosity due to substantial heating of the particles surface layer. The high rotation speed suggests possible applications in nanofluidics, optical sensing, and microtooling of soft matter.
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