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超越:共振幅度对光子传感器的重要性。

Beyond : The Importance of the Resonance Amplitude for Photonic Sensors.

作者信息

Conteduca Donato, Arruda Guilherme S, Barth Isabel, Wang Yue, Krauss Thomas F, Martins Emiliano R

机构信息

Photonics Group, School of Physics, Engineering and Technology, University of York, Heslington, York YO10 5DD, U.K.

São Carlos School of Engineering, Department of Electrical and Computer Engineering, University of São Paulo, São Carlos-SP 13566-590, Brazil.

出版信息

ACS Photonics. 2022 May 18;9(5):1757-1763. doi: 10.1021/acsphotonics.2c00188. Epub 2022 Apr 15.

Abstract

Resonant photonic sensors are enjoying much attention based on the worldwide drive toward personalized healthcare diagnostics and the need to better monitor the environment. Recent developments exploiting novel concepts such as metasurfaces, bound states in the continuum, and topological sensing have added to the interest in this topic. The drive toward increasingly higher quality ()-factors, combined with the requirement for low costs, makes it critical to understand the impact of realistic limitations such as losses on photonic sensors. Traditionally, it is assumed that the reduction in the -factor sufficiently accounts for the presence of loss. Here, we highlight that this assumption is overly simplistic, and we show that losses have a stronger impact on the resonance amplitude than on the -factor. We note that the effect of the resonance amplitude has been largely ignored in the literature, and there is no physical model clearly describing the relationship between the limit of detection (LOD), -factor, and resonance amplitude. We have, therefore, developed a novel, ab initio analytical model, where we derive the complete figure of merit for resonant photonic sensors and determine their LOD. In addition to highlighting the importance of the optical losses and the resonance amplitude, we show that, counter-intuitively, optimization of the LOD is not achieved by maximization of the -factor but by counterbalancing the -factor and amplitude. We validate the model experimentally, put it into context, and show that it is essential for applying novel sensing concepts in realistic scenarios.

摘要

基于全球对个性化医疗诊断的推动以及更好地监测环境的需求,共振光子传感器正备受关注。利用超表面、连续统中的束缚态和拓扑传感等新颖概念的最新进展,增加了人们对这一主题的兴趣。朝着越来越高的品质因数发展,再加上低成本的要求,使得理解诸如损耗等实际限制对光子传感器的影响变得至关重要。传统上,人们认为品质因数的降低足以说明损耗的存在。在此,我们强调这一假设过于简单,并表明损耗对共振幅度的影响比对品质因数的影响更大。我们注意到,共振幅度的影响在文献中很大程度上被忽视了,并且没有明确描述检测限(LOD)、品质因数和共振幅度之间关系的物理模型。因此,我们开发了一种新颖的从头算分析模型,在该模型中我们推导出共振光子传感器的完整品质因数并确定其检测限。除了强调光学损耗和共振幅度的重要性之外,我们还表明,与直觉相反,检测限的优化不是通过最大化品质因数来实现的,而是通过平衡品质因数和幅度来实现的。我们通过实验验证了该模型,将其置于实际情境中,并表明它对于在实际场景中应用新颖的传感概念至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b38/9121374/96983aa7c9c3/ph2c00188_0002.jpg

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