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表面等离子体激元纳米光阱刚度测量与设计优化

Plasmonic nano-optical trap stiffness measurements and design optimization.

作者信息

Jiang Quanbo, Claude Jean-Benoît, Wenger Jérôme

机构信息

Aix Marseille Univ, CNRS, Centrale Marseille, Institut Fresnel, 13013 Marseille, France.

出版信息

Nanoscale. 2021 Feb 25;13(7):4188-4194. doi: 10.1039/d0nr08635e.

Abstract

Plasmonic nano-optical tweezers enable the non-invasive manipulation of nano-objects under low illumination intensities, and have become a powerful tool for nanotechnology and biophysics. However, measuring the trap stiffness of nanotweezers remains a complicated task, which hinders the development of plasmonic trapping. Here, we describe an experimental method to measure the trap stiffness based on the temporal correlation of the fluorescence from the trapped object. The method is applied to characterize the trap stiffness in different double nanohole apertures and explore the influence of their design parameters in relationship with numerical simulations. Optimizing the double nanohole design achieves a trap stiffness 10× larger than the previous state-of-the-art. The experimental method and the design guidelines discussed here offer a simple and efficient way to improve the performance of nano-optical tweezers.

摘要

表面等离子体激元纳米光镊能够在低光照强度下对纳米物体进行非侵入式操控,已成为纳米技术和生物物理学领域的一项强大工具。然而,测量纳米光镊的捕获刚度仍然是一项复杂的任务,这阻碍了表面等离子体激元捕获技术的发展。在此,我们描述了一种基于被捕获物体荧光的时间相关性来测量捕获刚度的实验方法。该方法被用于表征不同双纳米孔孔径下的捕获刚度,并结合数值模拟探究其设计参数的影响。通过优化双纳米孔设计,可实现比先前最先进水平大10倍的捕获刚度。本文所讨论的实验方法和设计准则为提高纳米光镊的性能提供了一种简单而有效的途径。

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