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Optical trapping of microparticles and yeast cells at ultra-low intensity by intracavity nonlinear feedback forces

机译:通过腔内非线性反馈力的超低强度下微粒和酵母细胞的光学捕获

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In standard optical tweezers optical forces arise from the interaction of a tightly focused laser beam with a microscopic particle. The particle is always outside the laser cavity and the incoming beam is not affected by the particle position. Here we describe an optical trapping scheme inside the cavity of a fiber laser where the laser operation is nonlinearly influenced by the displacement of trapped particle and there is a coupling between laser operation to the motion of the trapped particle and this can dramatically enhances optical tweezers action and gives rise to nonlinear feedback forces. This scheme operates using an aspheric lens at low numerical aperture (NA=0.125), NIR wavelength (λ = 1030 nm), and very low average power which results in about two orders of magnitude reduction in exposure to laser intensity compared to standard optical tweezers. Ultra-low intensity at our wavelength can grant a safe, temperature-controlled environment, away from surfaces for microfuidics manipulation of biosamplcs that are sensitive to light intensity. As the main advantage of our approach and highly relevant application, we observed that we can trap single yeast cells at a very low power, corresponding to an intensity of 0.036 mW μm~(-2), that is more than a tenfold less intensity than standard techniques reported in the literature.
机译:在标准光学镊子中,光力由具有微观粒子的密切激光束的相互作用产生。颗粒始终在激光腔之外,并且进入光束不受颗粒位置的影响。在这里,我们描述了一种光纤激光器的腔内的光学捕获方案,其中激光器操作受到捕获颗粒的位移的非线性影响,并且激光操作与被困粒子的运动之间的耦合,这可以显着增强光学镊子动作并产生非线性反馈力。该方案在低数值孔径(NA = 0.125),NIR波长(λ= 1030nm),并且非常低的平均功率下操作,这导致与标准光学镊子相比,导致激光强度的暴露于激光强度的约两个级别减少。我们波长的超低强度可以赋予安全,温控的环境,远离对光强度敏感的生物化的微外细胞操纵的曲面。作为我们方法的主要优点和高度相关的应用,我们观察到我们可以在非常低的功率下捕获单酵母细胞,对应于0.036 MWμm〜(-2)的强度,这比强度更小于文献中报告的标准技术。

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