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Counter-propagating dual-trap optical tweezers based on linear momentum conservation

机译:基于线性动量守恒的反向传播双阱光镊

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摘要

We present a dual-trap optical tweezers setup which directly measures forces using linear momentum conservation. The setup uses a counter-propagating geometry, which allows momentum measurement on each beam separately. The experimental advantages of this setup include low drift due to all-optical manipulation, and a robust calibration (independent of the features of the trapped object or buffer medium) due to the force measurement method. Although this design does not attain the high-resolution of some co-propagating setups, we show that it can be used to perform different single molecule measurements: fluctuation-based molecular stiffness characterization at different forces and hopping experiments on molecular hairpins. Remarkably, in our setup it is possible to manipulate very short tethers (such as molecular hairpins with short handles) down to the limit where beads are almost in contact. The setup is used to illustrate a novel method for measuring the stiffness of optical traps and tethers on the basis of equilibrium force fluctuations, i.e., without the need of measuring the force vs molecular extension curve. This method is of general interest for dual trap optical tweezers setups and can be extended to setups which do not directly measure forces.
机译:我们提出了一种双陷阱光镊设置,它可以使用线性动量守恒直接测量力。该设置使用反向传播的几何形状,该几何形状允许分别测量每个光束的动量。这种设置的实验优势包括:由于全光学操作而导致的低漂移;以及由于力测量方法而导致的鲁棒性校准(与被捕获物体或缓冲介质的特征无关)。尽管此设计无法实现某些共传播设置的高分辨率,但我们证明它可用于执行不同的单分子测量:在不同力下基于波动的分子刚度表征以及对分子发夹的跳跃实验。值得注意的是,在我们的装置中,可以操纵非常短的系链(例如短手柄的分子发夹),直到珠子几乎接触的极限。该装置用于说明一种基于平衡力波动来测量光阱和系链刚度的新颖方法,即无需测量力与分子延伸曲线。这种方法对于双阱光学镊子装置普遍感兴趣,可以扩展到不直接测量力的装置。

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