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Quantification of High-Efficiency Trapping of Nanoparticles in a Double Nanohole Optical Tweezer

机译:双纳米孔光学镊子中纳米粒子的高效捕集定量

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摘要

We measure the dynamics of 20 nm polystyrene particles in a double nanohole trap to determine the trap stiffness for various laser powers. Both the autocorrelation analysis of Brownian fluctuations and the trapping transient analysis provide a consistent value of ~0.2 fNm stiffness for 2 mW of laser power, which is similar to theoretical calculations for aperture trapping. As expected, the stiffness increases linearly with laser power. This is comparable to the stiffness obtained for conventional optical traps for trapping, but for ten times smaller dielectric particles and less power. This approach will allow us to quantitatively evaluate future aperture-based optical traps, with the goal of studying the folding dynamics of smaller proteins (~10 kDa) and small-molecule interactions.
机译:我们在双纳米孔阱中测量20 nm聚苯乙烯颗粒的动力学,以确定各种激光功率的阱刚度。对于2 mW的激光功率,布朗波动的自相关分析和陷波瞬态分析都提供了约0.2 fN / nm的刚度值,这与孔径陷波的理论计算相似。如预期的那样,刚度随激光功率线性增加。这可与传统的用于捕获的光阱获得的刚度相媲美,但其电介质颗粒小十倍,功率小。这种方法将使我们能够定量评估未来基于孔径的光阱,其目的是研究较小蛋白质(〜10 kDa)的折叠动力学和小分子相互作用。

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