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首页> 外文期刊>Journal of Lightwave Technology >Efficient Plasmonic 2D Arrangement and Manipulation System, Suitable for Controlling Particle–Particle Interactions
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Efficient Plasmonic 2D Arrangement and Manipulation System, Suitable for Controlling Particle–Particle Interactions

机译:高效的等离子体2D布置和操纵系统,适用于控制粒子粒子相互作用

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摘要

Investigating interactions between biological or artificial micro and nanoparticles (NPs) are vital for understanding processes such as intercellular communications, and quantum and optical effects in an array of NPs. In this line of research, methods to precisely trap and manipulate NPs are essential to investigate such inter-particle interactions. Exciting higher order counter-propagating leaky surface plasmon modes (LSPMs) of a thin gold stripe, we present a simple and efficient method to arrange NPs into a two-dimensional (2D) periodic pattern, allowing precise control over inter-particle interactions. We demonstrate that the 2D lattice of traps is generated by interference of totally reflected surface plasmons from the gold stripe edges and also interference of two counter-propagating LSPMs. Analytical calculations and numerical simulations are in good agreement with the observed modal behavior of LSPMs. Due to the modal dependency of LSPMs on the incident wavelength, we show that in this system different inter-particle distance with nanometer resolution can be achieved by adjusting the wavelength of the incident laser beams. Moreover, we show that the trapped NP array shows waveguiding behavior, enhances the mode intensities and the resulted potential wells consequently. We expect that this self-induced enhancement of trapping efficiency is beneficial for the periodic arrangement of NPs and array formation. The proposed approach implemented in a simple plasmonic optophoresis system, opens the possibility to develop integrated optical manipulation chips, which allows simple and low-cost approach for controlling and studying the inter-particle interactions. Furthermore, the proposed approach is also promising for controllable assembling of NPs without the need for complicated and time consuming nano-lithography techniques.
机译:研究生物或人造微型和纳米颗粒(NPS)之间的相互作用对于理解细胞间通信等过程至关重要,以及在NPS中的阵列中的量子和光学效应。在这种研究中,精确捕获和操纵NPS的方法对于研究这种颗粒间相互作用是必不可少的。激动人心的高级反传播泄漏表面等离子体模式(LSPMS)薄金条带,我们介绍了一种简单有效的方法来将NPS将NPS排成二维(2D)周期图案,允许精确控制粒子间相互作用。我们证明了通过从金条纹边缘的完全反射的表面等离子体干扰以及两个反向传播的LSPM的干扰来产生2D陷阱的陷阱。分析计算和数值模拟与观察到的LSPM的模态行为吻合良好。由于LSPMS对入射波长的模态依赖性,我们表明,在该系统中,可以通过调节入射激光束的波长来实现与纳米分辨率的不同粒径距离。此外,我们表明被困的NP阵列显示了波导行为,增强了模式强度和所产生的潜在井。我们预计这种自我诱导的捕获效率提高有利于NPS和阵列形成的周期性排列。在简单的等离子体咽系统中实施的所提出的方法,开辟了开发集成光学操纵芯片的可能性,这允许控制和研究颗粒间相互作用的简单和低成本的方法。此外,所提出的方法也有望用于NPS的可控组装,而无需复杂和耗时的纳米光刻技术。

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