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Particle trapping and hopping in an optofluidic fishnet

机译:颗粒捕获和跳跃在Optof流体鱼网中

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Particle jumping between optical potentials has attracted much attention owing to its extensive involvement in many physical and biological experiments. In some circumstances, particle jumping indicates escaping from the optical trap, which is an issue people are trying to avoid. Nevertheless, particle jumping can facilitate the individual trap in each laser spot in the optical lattice and enable sorting and delivery of nanoparticles. Particle hopping has not been seen in fluid because Fluidic drag force dramatically reduce the dwell time of particle or break the potential well. Here, we observe particle hopping in the microchannel by three reasons, e.g., particle collision or aggregation, light disturbing by pre-trapped particle and fake trapping position. We show that commonly ignored particle influence to the light could create a new isolated trapping position, where particle hops to the adjacent potential well. The hopping happens in an optofluidic fishnet which is comprised of discrete hotspots enabling 2D patterning of particles in the flow stream for the first time. We also achieve a 2D patterning of cryptosporidium in the microchannel. Our observed particle hopping in the flow stream completes the family of particle kinetics in potential wells and inspires new interests in the particle disturbed optical trapping. The 2D patterning of particles benefits the parallel study of biological samples in the flow stream and have potential on cell sorting and drug delivery.
机译:由于其在许多物理和生物实验中,光学电位之间的粒子跳跃引起了很多关注。在某些情况下,粒子跳跃表明来自光学陷阱的逃逸,这是人们试图避免的问题。然而,粒子跳跃可以促进光学晶格中的每个激光点中的单独捕集物,并能够排序和递送纳米颗粒。颗粒跳跃在流体中没有看到,因为流体阻力大大减少了颗粒的停留时间或破坏潜在的井。这里,我们观察微通道中的粒子跳跃,例如,通过预捕获的颗粒和假捕获位置,光扰,颗粒碰撞或聚集。我们表明,常用的粒子影响到光可能会产生一个新的隔离捕获位置,其中粒子跳跃到相邻的潜在井。跳跃发生在optof流体鱼网中,该渔网系包括离散热点,使得第一次能够在流动流中的粒子中的2D图案化。我们还实现了微通道中的密码孢子座的2D图案化。我们在流动流中观察到的粒子跳跃完成潜在的井中的粒子动力学系列,并激发了粒子干扰的光学捕获中的新兴趣。粒子的2D图案化有利于流动流中生物样品的平行研究,并具有细胞分选和药物递送的潜力。

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