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Parallel and selective trapping in a patterned plasmonic landscape

机译:并行和选择性诱捕在图案化的等离子体景观中

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The implementation of optical tweezers at a surface opens a huge potential towards the elaboration of future lab-on-a-chip devices entirely operated with light. The transition from conventional three-dimensional (3D) tweezers to 2D is made possible by exploiting evanescent fields bound at interfaces. In particular, surface plasmons (SP) at metal/dielectric interfaces are expected to be excellent candidates to relax the requirements on incident power and to achieve subwavelength trapping volumes. Here, we report on novel 2D SP-based optical tweezers formed by finite gold areas fabricated at a glass surface. We demonstrate that SP enable stable trapping of single dielectric beads under unfocused illumination with considerably reduced laser intensity compared with conventional optical tweezers. We show that the method can be extended to parallel trapping over any predefined pattern. Finally, we demonstrate how SP tweezers can be designed to selectively trap one type of particles out of a mixture, acting as an efficient optical sieve.
机译:在表面上的光学镊子的实现为制定完全用光操作的未来实验室装置的备注开辟了巨大的潜力。通过利用在接口处绑定的渐逝场来实现从传统三维(3D)镊子到2D的转换。特别地,金属/介电接口的表面等离子体(SP)预计是优异的候选者,以便放宽入射力的要求并实现亚波长捕获量。在这里,我们报告由在玻璃表面制造的有限金区域形成的新型2D SP基光镊子。我们证明,与传统光学镊子相比,SP能够在不聚焦的照明下稳定地捕获单个介质珠,与传统的光学镊子相比显着降低的激光强度。我们表明该方法可以扩展到并行捕获任何预定义模式。最后,我们展示了SP镊子如何设计成选择性地将一种类型的颗粒从混合物中捕获出一种,其作用为有效的光学筛。

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