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Optical Trapping and Manipulation of Superparamagnetic Beads Using Annular-Shaped Beams

机译:使用环形光束对超顺磁珠的光学诱捕和操纵

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We propose an optical tweezers setup based on an annular-shaped laser beam that is efficient to trap 2.8 μ m-diameter superparamagnetic particles. The optical trapping of such particles was fully characterized, and a direct absolute comparison with a geometrical optics model was performed. With this comparison, we were able to show that light absorption by the superparamagnetic particles is negligible for our annular beam tweezers, differing from the case of conventional Gaussian beam tweezers, in which laser absorption by the beads makes stable trapping difficult. In addition, the trap stiffness of the annular beam tweezers increases with the laser power and with the bead distance from the coverslip surface. While this first result is expected and similar to that achieved for conventional Gaussian tweezers, which use ordinary dielectric beads, the second result is quite surprising and different from the ordinary case, suggesting that spherical aberration is much less important in our annular beam geometry. The results obtained here provide new insights into the development of hybrid optomagnetic tweezers, which can apply simultaneously optical and magnetic forces on the same particles.
机译:我们提出了一种基于环形激光束的光镊装置,该光镊有效地捕获了2.8μm的光。 m直径超顺磁性粒子。充分表征了此类颗粒的光学捕获,并与几何光学模型进行了直接的绝对比较。通过该比较,我们能够证明,对于环形束镊,超顺磁性粒子的光吸收可以忽略不计,这与传统的高斯束镊的情况不同,在传统的高斯束镊中,磁珠的激光吸收使稳定的捕获变得困难。另外,环形光束镊子的阱刚度随着激光功率和与盖玻片表面的珠子距离的增加而增加。尽管第一个结果是预期的,并且与使用普通介电珠的常规高斯镊子所获得的结果相似,但第二个结果却非常令人惊讶,并且与普通情况不同,这表明球差在我们的环形光束几何中的重要性不那么重要。此处获得的结果为混合光镊的开发提供了新的见识,该镊可同时将光和磁力施加到同一粒子上。

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