论文标题
动态多纳米颗粒使用超材料等离子镊子捕获
Dynamic Multiple Nanoparticle Trapping using Metamaterial Plasmonic Tweezers
论文作者
论文摘要
由于其通用性和非侵入性,光学操纵引起了极大的兴趣。但是,对于纳米镜界,常规的光学诱捕仍然降低。近年来,血浆的出现导致了由于衍射和高诱捕激光大力的要求而革命性的局限性变化。在基于近场光学诱捕腔的系统中,FANO谐振光镊具有强大的捕获能力。在这项工作中,我们通过使用超材料等离子体光学镊子在实验上证明了20 nm颗粒的顺序捕获。我们通过陷阱刚度测量值研究了低和高入射激光强度下各种捕获位置的多重陷阱。我们的配置可以用作低激光激发下的轻驱动纳米级排序设备。我们的结果提供了一种替代方法,可在不同的热点捕获多个纳米颗粒,从而可以控制纳米级的大规模运输的新方法。
Optical manipulation has attracted remarkable interest owing to its versatile and non-invasive nature. However, conventional optical trapping remains inefficient for the nanoscopic world. The emergence of plasmonics in recent years has brought a revolutionary change in overcoming limitations due to diffraction and the requirements for high trapping laser powers. Among the near-field optical trapping cavity-based systems, Fano resonant optical tweezers have a robust trapping capability. In this work, we experimentally demonstrate sequential trapping of 20 nm particles through the use of metamaterial plasmonic optical tweezers. We investigate the multiple trapping via trap stiffness measurements for various trapping positions at low and high incident laser intensities. Our configuration could be used as a light-driven nanoscale sorting device under low laser excitation. Our results provide an alternative approach to trap multiple nanoparticles at distinct hotspots, enabling new ways to control mass transport on the nanoscale.