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The μPIVOT: an integrated particle image velocimeter and optical tweezers instrument for microenvironment investigations

机译:μPIVOT:用于微环境研究的集成式颗粒图像测速仪和光学镊子仪

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摘要

A novel instrument to manipulate and characterize the mechanical environment in and around microscale objects in a fluidic environment has been developed by integrating two laser-based techniques: micron-resolution particle image velocimetry (μPIV) and optical tweezers (OT). This instrument, the μPIVOT, enables a new realm of microscale studies, yet still maintains the individual capabilities of each optical technique. This was demonstrated with individual measurements of optical trap stiffness (∼70 pN μm−1 for a 20 μm polystyrene sphere and a linear relationship between trap stiffness and laser power) and fluid velocities within 436 nm of a microchannel wall. The integrated device was validated by comparing computational flow predictions to the measured velocity profile around a trapped particle in either a uniform flow or an imposed, gravity-driven microchannel flow (R2 = 0.988, RMS error = 13.04 μm s−1). Interaction between both techniques is shown to be negligible for 15 μm to 35 μm diameter trapped particles subjected to fluid velocities from 50 μm s−1 to 500 μm s−1 even at the highest laser power (1.45 W). The integrated techniques will provide a unique perspective toward understanding microscale phenomena including single-cell biomechanics, non-Newtonian fluid mechanics and single particle or particle–particle hydrodynamics.
机译:通过集成两种基于激光的技术,开发了一种新颖的仪器来操纵和表征流体环境中微尺度物体及其周围的机械环境:微米分辨率粒子图像测速仪(μPIV)和光学镊子(OT)。这款名为μPIVOT的仪器开启了微尺度研究的新领域,但仍保持了每种光学技术的独特功能。这是通过对光阱刚度(20μm聚苯乙烯球的〜70 pNμm -1 )和微通道436 nm内的流体速度进行单独测量而证明的壁。通过将计算流量预测与以均匀流或施加的重力驱动微通道流(R 2 = 0.988,RMS误差= 13.04)中捕获的颗粒周围的测得速度分布进行比较,验证了集成设备的有效性。 μms -1 )。两种技术之间的相互作用被证明对于直径介于15μm至35μm的被捕集的颗粒,即使在50μms -1 至500μms -1 的流体速度下也可以忽略不计最高激光功率(1.45 W)。集成技术将为理解微观现象提供独特的视角,这些微观现象包括单细胞生物力学,非牛顿流体力学以及单颗粒或颗粒-颗粒流体动力学。

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