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Numerical analysis of an optical nanoscale particles trapping device based on a slotted nanobeam cavity

机译:基于开缝纳米束腔的纳米颗粒光学捕获装置的数值分析

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摘要

A slotted nanobeam cavity (SNC) is utilized to trap a polystyrene (PS) particle with a radius of only 2 nm. The carefully designed SNC shows an ultrahigh Q factor of 4.5 × 107 while maintaining a small mode volume of 0.067(λwater)3. Strongly enhanced optical trapping force is numerically demonstrated when the 2 nm PS particle is introduced into the central, slotted part of the SNC. In the vertical direction, the numerical calculation results show that a trapping stiffness of 0.4 pN/(nm · mW) around the equilibrium position and a trapping potential barrier of ~2000 kBT/mW can be reached. To our best knowledge, the trapping capability (trapping stiffness and trapping potential barrier) of the proposed structure significantly outperforms the theoretical results of those in previously reported work. In addition, the SNC system does not suffer from the metal induced heat issue that restricts the performance of state-of-the-art optical trapping systems involving plasmonic enhancement. Based on the proposed cavity, applications such as lab-on-a-chip platforms for nanoscale particle trapping and analysis can be expected in future.
机译:缝隙纳米束腔(SNC)用于捕获半径仅为2 nm的聚苯乙烯(PS)颗粒。精心设计的SNC具有4.5 Q×10 7 的超高Q值,同时保持了0.067(λ/ nwater) 3 的小模式体积。当将2μnmPS粒子引入SNC的中央,有缝隙的部分时,通过数值证明了大大增强的光学捕获力。在垂直方向上,数值计算结果表明,在平衡位置附近的俘获刚度为0.4 pN /(nm··mW),俘获势垒为〜2000 kBT / mW。据我们所知,拟建结构的捕获能力(捕获刚度和捕获势垒)显着优于先前报道的工作的理论结果。此外,SNC系统不会遭受金属引起的热问题的困扰,该问题会限制涉及等离激元增强的最新光学捕获系统的性能。基于建议的腔,将来可以预期诸如纳米芯片捕获和分析的芯片实验室平台等应用。

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