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超高Q值的自由空间与微环谐振器的耦合。

Ultra-high-Q free-space coupling to microtoroid resonators.

作者信息

Suebka Sartanee, McLeod Euan, Su Judith

机构信息

Wyant College of Optical Sciences, University of Arizona, Tucson, AZ, USA.

Department of Biomedical Engineering, University of Arizona, Tucson, AZ, USA.

出版信息

Light Sci Appl. 2024 Mar 15;13(1):75. doi: 10.1038/s41377-024-01418-0.

Abstract

Whispering gallery mode (WGM) microtoroid resonators are one of the most sensitive biochemical sensors in existence, capable of detecting single molecules. The main barrier for translating these devices out of the laboratory is that light is evanescently coupled into these devices though a tapered optical fiber. This hinders translation of these devices as the taper is fragile, suffers from mechanical vibration, and requires precise positioning. Here, we eliminate the need for an optical fiber by coupling light into and out from a toroid via free-space coupling and monitoring the scattered resonant light. A single long working distance objective lens combined with a digital micromirror device (DMD) was used for light injection, scattered light collection, and imaging. We obtain Q-factors as high as with this approach. Electromagnetically induced transparency (EIT)-like and Fano resonances were observed in a single cavity due to indirect coupling in free space. This enables improved sensing sensitivity. The large effective coupling area (~10 μm in diameter for numerical aperture = 0.14) removes the need for precise positioning. Sensing performance was verified by combining the system with the frequency locked whispering evanescent resonator (FLOWER) approach to perform temperature sensing experiments. A thermal nonlinear optical effect was examined by tracking the resonance through FLOWER while adjusting the input power. We believe that this work will be a foundation for expanding the implementation of WGM microtoroid resonators to real-world applications.

摘要

回音壁模式(WGM)微环谐振器是目前最灵敏的生化传感器之一,能够检测单分子。将这些设备从实验室转化到实际应用中的主要障碍在于,光通过锥形光纤以倏逝波的方式耦合到这些设备中。这阻碍了这些设备的实际应用,因为锥形光纤很脆弱,容易受到机械振动的影响,并且需要精确的定位。在此,我们通过自由空间耦合将光耦合进微环并从微环中耦合出光,同时监测散射的共振光,从而不再需要光纤。一个长工作距离的单物镜与一个数字微镜器件(DMD)相结合,用于光注入、散射光收集和成像。通过这种方法,我们获得了高达 的品质因数。由于自由空间中的间接耦合,在单个腔中观察到了类似电磁感应透明(EIT)和法诺共振的现象。这提高了传感灵敏度。较大的有效耦合面积(对于数值孔径 = 0.14,直径约为10μm)消除了对精确定位的需求。通过将该系统与频率锁定回音壁倏逝波谐振器(FLOWER)方法相结合来进行温度传感实验,验证了传感性能。在调整输入功率的同时,通过FLOWER跟踪共振来研究热非线性光学效应。我们相信这项工作将为将WGM微环谐振器的应用扩展到实际应用奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff9c/10942989/c3711aac70cf/41377_2024_1418_Fig1_HTML.jpg

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