使用光学微球谐振器传感器实时跟踪二氧化碳浓度。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-06-01 Epub Date: 2024-02-14 DOI:10.1177/00037028241228883
Brandon Demory, Logan Echeveria, Christian Tolfa, Sara Harrison, Victor Khitrov, Allan S P Chang, Tiziana Bond
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引用次数: 0

摘要

悄声廊模式共振传感器是一种非破坏性光学传感器,可以探测和监测气态环境中的扰动。通过其峰值波长、振幅和品质因数(Q 因子)的共振特性,可在几秒钟内量化浓度变化,并可在数天内对其进行监测,具有极高的稳定性。此外,对于可在极端环境中使用的一次性传感器来说,小体积、低成本和高灵敏度也是理想的特性。谐振腔的大 Q 因子可实现较长的相互作用长度,并放大背景折射率微小变化的影响,这种影响可通过谐振波长的皮米偏移检测到。然而,这种测量方法容易受到其他环境因素(如温度、压力和湿度)变化的影响,而这些因素在皮米波长尺度上都有表现,这就更需要将这些变量解耦。在这项工作中,我们比较了不同直径的谐振器对二氧化碳、氮气及其混合物的光谱响应,观察到 1550 nm 附近空腔谐振的光谱偏移和拓宽。此外,还对环境温度对热光学效应引起的光谱偏移的影响进行了表征和量化。最后,实时改变气体浓度以展示共振传感器的跟踪和恢复能力。
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Real-Time Tracking of Carbon Dioxide Concentration Using an Optical Microsphere Resonator Sensor.

Whispering gallery mode resonator sensors are nondisruptive optical sensors that can detect and monitor perturbations in a gaseous environment. Through its resonant properties of peak wavelength, amplitude, and quality factor (Q factor), changes in concentration can be quantified within seconds and monitored over days with great stability. In addition, the small footprint, low cost, and high sensitivity are ideal properties for a disposable sensor that can be utilized in extreme environments. The large Q factor of the resonant cavity enables long interaction lengths and amplifies the effect of small changes in the background refractive index, which is detectable in picometer shifts of the resonance wavelength. However, this measurement is susceptible to changes in other environmental factors such as temperature, pressure, and humidity, which manifest on the picometer wavelength scale, reinforcing the need to decouple the variables. In this work, we compare the spectral response of different diameter resonators to carbon dioxide, nitrogen, and its mixtures, observing the spectral shifting and broadening of the cavity resonance near 1550 nm. In addition, the effect of environmental temperature on spectral shifting due to the thermo-optic effect is characterized and quantified. Lastly, the gas concentrations are changed in real time to showcase the tracking and recovery capabilities of the resonator sensor.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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