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Three-Dimensional Optical Trapping of a Plasmonic Nanoparticle using Low Numerical Aperture Optical Tweezers

机译:低数值孔径光镊对等离子体纳米粒子的三维光学诱捕

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摘要

It was previously believed that larger metal nanoparticles behave as tiny mirrors that are pushed by the light beam radiative force along the direction of beam propagation, without a chance to be confined. However, several groups have recently reported successful optical trapping of gold and silver particles as large as 250 nm. We offer a possible explanation based on the fact that metal nanoparticles naturally occur in various non-spherical shapes and their optical properties differ significantly due to changes in localized plasmon excitation. We demonstrate experimentally and support theoretically three-dimensional confinement of large gold nanoparticles in an optical trap based on very low numerical aperture optics. We showed theoretically that the unique properties of gold nanoprisms allow an increase of trapping force by an order of magnitude at certain aspect ratios. These results pave the way to spatial manipulation of plasmonic nanoparticles using an optical fibre, with interesting applications in biology and medicine.
机译:以前认为,较大的金属纳米粒子的作用就像微小的镜子,被光束辐射力沿着光束传播的方向推动,没有被限制的机会。但是,最近有几个小组报告成功地成功捕获了250nm的金和银颗粒。我们基于以下事实提供可能的解释:金属纳米粒子自然会以各种非球形形状出现,并且由于局部等离激元激发的变化,其光学性质会显着不同。我们在实验上证明并在理论上支持大金纳米颗粒在基于非常低的数值孔径光学器件的光阱中的三维约束。我们从理论上表明,金纳米棱镜的独特性质允许在某些长宽比下将捕获力提高一个数量级。这些结果为利用光学纤维对等离激元纳米粒子进行空间操作铺平了道路,并在生物学和医学领域引起了人们的兴趣。

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