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Non-contact optical control of multiple particles and defects using holographic optical trapping with phase-only liquid crystal spatial light modulator

机译:使用仅相位液晶空间光调制器的全息光阱对多个粒子和缺陷进行非接触式光学控制

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In this work, three-dimensional manipulation of multiple defects and structures is performed in the framework of holographic optical trapping approach using a spatial light modulator. A holographic optical tweezers system is constructed using a liquid crystal spatial light modulator to generate multiple optical traps. We optimize the tweezers setup to perform polarization-sensitive holographic optical trapping and then explore properties of optical trapping in thermotropic liquid crystals and compare them to the case of isotropic fluids. One of the major challenges complicating the quantitative measurements in these fluids is the anisotropic nature of the liquid crystal medium, which makes the tight focusing of the laser beam difficult and considerably weakens optical trapping forces. Using liquid crystals with low birefringence allows us to mitigate these artefacts. Optical trapping forces and the trap stiffness are first calibrated for different laser powers using viscous drag forces. This is then used to probe inter-particle and defect-particle interaction forces as well as to characterize tension of line defects in the bulk of liquid crystals.
机译:在这项工作中,在使用空间光调制器的全息光学捕获方法的框架内,对多个缺陷和结构进行了三维操纵。使用液晶空间光调制器构建全息光镊系统,以产生多个光阱。我们优化了镊子的设置,以执行偏振敏感型全息光学捕获,然后探索热致液晶中的光学捕获特性,并将其与各向同性流体进行比较。使这些流体中的定量测量复杂化的主要挑战之一是液晶介质的各向异性,这使得激光束的紧密聚焦变得困难,并且大大削弱了光学捕获力。使用低双折射的液晶可以减轻这些伪影。首先使用粘性拖曳力针对不同的激光功率校准光捕获力和捕获器刚度。然后将其用于探测粒子间和缺陷粒子之间的相互作用力,以及表征大部分液晶中的线缺陷张力。

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