论文标题

基于连接的nanoring光圈的等离激益镊

Plasmonic tweezers based on connected nanoring apertures

论文作者

Bouloumis, Theodoros D., Kotsifaki, Domna G., Han, Xue, Chormaic, Sile Nic, Truong, Viet Giang

论文摘要

使用光学作用的微粒操作导致了生活和物理科学中的许多应用。为了将光学捕获延伸到纳米优势,在这项工作中,我们证明了将单个纳米颗粒捕获在具有各种内部磁盘构型的等离子同轴纳米施加阵列中,并且理论上估计了相关力。观察到20nm聚苯乙烯颗粒的高归一化实验陷阱刚度为3.50fn/nm/mW,对于纳米界直径的最佳设计,在980nm的诱捕波长下,最佳设计的最佳设计。理论模拟用于解释观察到的陷阱刚度的增强。以14 $ \ times $ 10 $^{11} $颗粒/ml的浓度为14 $ \ times $ \ the,低入射激光强度为0.59MW/$ $ m $ m $^{2} $,以14 $ \ times $ 10 $^{11} $粒子/ml获得的快速粒子捕获时间。这种良好的诱捕性能通过将纳米颗粒快速递送到多个诱捕位点的良好性能源于增强的电磁近场和空间温度升高的组合。这项工作在纳米颗粒传递中具有应用,并具有很高的精度,并弥合了光学操纵和纳米流体学之间的差距。

The manipulation of microparticles using optical forces has led to many applications in the life and physical sciences. To extend optical trapping towards the nano-regime, in this work we demonstrate trapping of single nanoparticles in arrays of plasmonic coaxial nano-apertures with various inner disk configurations and theoretically estimate the associated forces. A high normalised experimental trap stiffness of 3.50fN/nm/mW for 20nm polystyrene particles is observed for an optimum design of 149nm for the nanodisk diameter at a trapping wavelength of 980nm. Theoretical simulations are used to interpret the enhancement of the observed trap stiffness. A quick particle trapping time of less than 8sec is obtained at a concentration of 14$\times$10$^{11}$ particles/ml with low incident laser intensity of 0.59mW/$μ$m$^{2}$. This good trapping performance with fast delivery of nanoparticles to multiple trapping sites emerges from a combination of the enhanced electromagnetic near-field and spatial temperature increase. This work has applications in nanoparticle delivery and trapping with high accuracy, and bridges the gap between optical manipulation and nanofluidics.

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