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Nanometric optical tweezers based on nanostructured substrates

机译:基于纳米结构基底的纳米光镊

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The ability to control the position of a mesoscopic object with nanometric precision is important for the rapid progress of nanoscience. One of the most promising tools to achieve such control is optical tweezers, which trap objects near the focus of a laser beam. However, the drawbacks of conventional tweezers include a trapping volume that is diffraction-limited and significant brownian motion of trapped nanoobjects. Here, we report the first experimental realization of three-dimensional nanometric optical tweezers that are based on nanostructured substrates. Using electromagnetically coupled pairs of gold nanodots in a standard optical tweezers set-up, we create an array of subwavelength plasmonic optical traps that offer a significant increase in trapping efficiency. The nanodot optical near-fields reduce the trapping volume beyond the diffraction limit and quench brownian motion of the trapped nanoparticles by almost an order of magnitude as compared to conventional tweezers operating under the same trapping conditions. Our tweezers achieve nanoscale control of entities at significantly smaller laser powers and open new avenues for nanomanipulation of fragile biological objects.
机译:以纳米精度控制介观物体位置的能力对于纳米科学的快速发展很重要。实现这种控制的最有前途的工具之一是光镊,它可以将物体捕获在激光束焦点附近。然而,常规镊子的缺点包括被衍射限制的捕获体积和被捕获的纳米物体的明显的布朗运动。在这里,我们报告基于纳米结构的基板的三维纳米光镊子的第一个实验实现。在标准的光镊设置中使用电磁耦合的金纳米点对,我们创建了亚波长等离激元光阱阵列,可大大提高捕获效率。与在相同俘获条件下操作的常规镊子相比,纳米点光学近场将俘获体积减小到超过衍射极限,并使俘获的纳米颗粒的布朗运动猝灭近一个数量级。我们的镊子可以以较小的激光功率实现对实体的纳米级控制,并为脆弱的生物物体的纳米处理开辟了新途径。

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