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通过表面等离子体波干涉在多模纳米狭缝中实现选择性模态激发。

Selective modal excitation in a multimode nanoslit by interference of surface plasmon waves.

作者信息

Valero Marcos, Mayoral-Astorga Luis-Angel, Northfield Howard, Choi Hyung Woo, De Leon Israel, Ray Mallar, Berini Pierre

机构信息

School of Engineering and Sciences, Tecnológico de Monterrey Monterrey Nuevo León 64849 Mexico

School of Electrical Engineering and Computer Science, University of Ottawa Ottawa Ontario K1N 6N5 Canada

出版信息

Nanoscale Adv. 2025 Jan 9;7(5):1305-1317. doi: 10.1039/d4na00862f. eCollection 2025 Feb 25.

Abstract

Interference of surface plasmons has been widely utilized in optical metrology for applications such as high-precision sensing. In this paper, we introduce a surface plasmon interferometer with the potential to be arranged in arrays for parallel multiplexing applications. The interferometer features two grating couplers that excite surface plasmon polariton (SPP) waves traveling along a gold-air interface before converging at a gold nanoslit where they interfere. A key innovation lies in the ability to tune the interference pattern by altering the geometrical properties of the gold nanoslit such that one, two or more resonance modes are supported in the nanoslit. Our experimental results validate the approach of our design and modelling process, demonstrating the potential to fine-tune geometrical parameters such as grating coupler pitch, depth, duty cycle, and nanoslit dimensions to alter the transmitted radiation pattern and the transmittance. We demonstrate the ability of a grating coupler to induce focusing of SPP waves to an arbitrary location on chip by illuminating with a converging Gaussian beam. Additionally, we observed far-field interference patterns linked to the multimodal operation of the nanoslit.

摘要

表面等离子体激元干涉已在光学计量中广泛应用于诸如高精度传感等领域。在本文中,我们介绍了一种表面等离子体激元干涉仪,它有潜力被排列成阵列用于并行复用应用。该干涉仪具有两个光栅耦合器,它们激发沿金 - 空气界面传播的表面等离子体激元极化子(SPP)波,然后在一个金纳米狭缝处汇聚并发生干涉。一项关键创新在于能够通过改变金纳米狭缝的几何特性来调整干涉图样,使得纳米狭缝中支持一个、两个或更多的共振模式。我们的实验结果验证了我们的设计和建模过程方法,展示了微调诸如光栅耦合器间距、深度、占空比和纳米狭缝尺寸等几何参数以改变透射辐射图样和透射率的潜力。我们通过用会聚高斯光束照射,展示了光栅耦合器将SPP波聚焦到芯片上任意位置的能力。此外,我们观察到了与纳米狭缝多模操作相关的远场干涉图样。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a49a/11854195/5e306a84fd69/d4na00862f-f1.jpg

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