A Method for Directly Observing Mechanical Oscillations in Photonic Structures Based on Porous Silicon Nanostructures

Micro Pub Date : 2024-02-01 DOI:10.3390/micro4010006
Miller Toledo Solano, H. H. Cerecedo-Núñez, Martha Alicia Palomino Ovando, Jocelyn Faubert, K. Misaghian, J. E. Lugo
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Abstract

Due to their unique properties, porous silicon nanostructures have garnered much attention in photonics. For example, these structures can exhibit photoluminescence and are highly efficient in trapping light, making them ideal for applications such as biosensors, optical communication, and solar cells. The production of electromagnetic forces by light is a well-established concept, and the mechanism behind it is well-understood. In the past, we have used these forces to induce mechanical oscillations in a photonic structure based on porous silicon. Usually, to detect the oscillations, a high-precision vibrometer is utilized. However, we report a novel approach to visualizing photonic structure oscillations here. The traditional method of using a vibrometer as an indirect measurement tool has been replaced by one that involves directly observing the changes using a camera, digital movement amplification, a theoretical approximation, and FDTE simulations. This original technique provides researchers with a less expensive means of studying photonic structure movements. This proposal could be extended to other microscopic movements or for dynamical interferometric fringe analysis.
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直接观测基于多孔硅纳米结构的光子结构中机械振动的方法
多孔硅纳米结构因其独特的性能在光子学领域备受关注。例如,这些结构可以发出光致发光,并能高效捕捉光线,因此非常适合生物传感器、光通信和太阳能电池等应用。光产生电磁力是一个成熟的概念,其背后的机理也广为人知。过去,我们曾利用这些力在基于多孔硅的光子结构中诱发机械振荡。通常,要检测振荡,需要使用高精度测振仪。然而,我们在此报告了一种可视化光子结构振荡的新方法。传统的方法是使用测振仪作为间接测量工具,而我们的方法是使用照相机、数字运动放大、理论近似和 FDTE 模拟直接观察变化。这项原创技术为研究人员提供了一种成本较低的研究光子结构运动的方法。这项建议可扩展到其他微观运动或动态干涉条纹分析。
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