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单臂双峰等离子体光子折射率传感器的理论与实验分析

Theoretical and Experimental Analysis of Single-Arm Bimodal Plasmo-Photonic Refractive Index Sensors.

作者信息

Fotiadis Konstantinos, Chatzianagnostou Evangelia, Spasopoulos Dimosthenis, Simos Stelios, Bellas Dimitris V, Bhalerao Omkar, Suckow Stephan, Lemme Max C, Lidorikis Elefterios, Pleros Nikos

机构信息

Department of Informatics, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.

Center for Interdisciplinary Research and Innovation (CIRI-AUTH), Balkan Center, Buildings A & B, 10th km Thessaloniki-Thermi Rd, 57001 Thessaloniki, Greece.

出版信息

Sensors (Basel). 2024 Jun 7;24(12):3705. doi: 10.3390/s24123705.

Abstract

In this paper, we study both theoretically and experimentally the sensitivity of bimodal interferometric sensors where interference occurs between two plasmonic modes with different properties propagating in the same physical waveguide. In contrast to the well-known Mach-Zehnder interferometric (MZI) sensor, we show for the first time that the sensitivity of the bimodal sensor is independent of the sensing area length. This is validated by applying the theory to an integrated plasmo-photonic bimodal sensor that comprises an aluminum (Al) plasmonic stripe waveguide co-integrated between two accessible SU-8 photonic waveguides. A series of such bimodal sensors utilizing plasmonic stripes of different lengths were numerically simulated, demonstrating bulk refractive index (RI) sensitivities around 5700 nm/RIU for all sensor variants, confirming the theoretical results. The theoretical and numerical results were also validated experimentally through chip-level RI sensing experiments on three fabricated SU-8/Al bimodal sensors with plasmonic sensing lengths of 50, 75, and 100 μm. The obtained experimental RI sensitivities were found to be very close and equal to 4464, 4386, and 4362 nm/RIU, respectively, confirming that the sensing length has no effect on the bimodal sensor sensitivity. The above outcome alleviates the design and optical loss constraints, paving the way for more compact and powerful sensors that can achieve high sensitivity values at ultra-short sensing lengths.

摘要

在本文中,我们从理论和实验两方面研究了双峰干涉传感器的灵敏度,该传感器中,在同一物理波导中传播的具有不同特性的两个等离子体模式之间会发生干涉。与著名的马赫-曾德尔干涉(MZI)传感器不同,我们首次表明双峰传感器的灵敏度与传感区域长度无关。通过将该理论应用于一种集成的等离子体光子双峰传感器来验证这一点,该传感器包括一个铝(Al)等离子体条纹波导,其与两个可接入的SU-8光子波导共同集成。对一系列使用不同长度等离子体条纹的此类双峰传感器进行了数值模拟,结果表明所有传感器变体的体折射率(RI)灵敏度约为5700 nm/RIU,证实了理论结果。理论和数值结果还通过对三个制造的SU-8/Al双峰传感器进行芯片级RI传感实验得到了实验验证,这些传感器的等离子体传感长度分别为50、75和100μm。发现获得的实验RI灵敏度非常接近,分别等于4464、4386和4362 nm/RIU,证实了传感长度对双峰传感器灵敏度没有影响。上述结果减轻了设计和光学损耗的限制,为能够在超短传感长度下实现高灵敏度值的更紧凑、更强大的传感器铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/500f/11207750/5cf06fe77f14/sensors-24-03705-g001.jpg

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