Shaban Samar M, Mehaney Ahmed, Aly Arafa H
Appl Opt. 2020 May 1;59(13):3878-3885. doi: 10.1364/AO.388763.
In this research, the photonic and phononic response of one-dimensional multilayer phoxonic crystals (PxCs) with normal incident of electromagnetic and acoustic waves is discussed. The presented design can work as a highly sensitive sensor for measuring three binary alcohol/water mixtures (i.e., 1-propanol/water, ethanol/water, and methanol/water) for a wide range of concentrations. The PxC sensor is able to detect small changes in the refractive index and longitudinal sound velocity of the alcohol/water mixture with initially neglecting the acousto-optical interaction. The sensor design is a defective structure as [$({\rm Si}/{\rm SiO}_2)^4 (\rm mixture;wt. %) {({{\rm SiO}_2}/{\rm Si})^4}$(Si/SiO)(mixturewt.%)(SiO/Si)]. Also, we studied the effects of changing mixture concentrations from 0 wt. % to 100 wt. % on the physio-chemical parameters and resonant mode frequency. In our results, we have achieved high performance for the three alcohol mixtures in both phononic and photonic sensors especially for low concentrations. For example, in the photonic sensor we obtained sensitivity, $Q$Q value, and figure of merit of 873 nm/RIU, 755, and ${290};{{\rm RIU}^{ - 1}}$290RIU, respectively, for methanol of concentration 10% in water. The phononic sensor showed higher results compared with the photonic sensor, as for ethanol with concentration 26.8% in water we obtained sensitivity, $Q$Q value, and figure of merit of ${37};{{\rm MHz/ms}^{ - 1}}$37MHz/ms, 1604, and ${8.4};{({\rm m/s})^{ - 1}}$8.4(m/s), respectively. The proposed structure has different merits: operation at high temperatures, compact size, ease of fabrication, and feasibility of alcohol detection with two different methods that could be used in many chemical applications.
在本研究中,讨论了一维多层声子光子晶体(PxCs)在电磁波和声波垂直入射时的光子和声子响应。所提出的设计可作为一种高灵敏度传感器,用于测量多种浓度范围内的三种二元醇/水混合物(即1-丙醇/水、乙醇/水和甲醇/水)。该PxC传感器能够在最初忽略声光相互作用的情况下,检测醇/水混合物折射率和纵向声速的微小变化。传感器设计为缺陷结构[(${\rm Si}/{\rm SiO}_2)^4$(混合物重量百分比)${({{\rm SiO}_2}/{\rm Si})^4}$(Si/SiO)(混合物重量百分比)(SiO/Si)]。此外,我们研究了混合物浓度从0 wt.% 变化到100 wt.% 对物理化学参数和共振模式频率的影响。在我们的结果中,对于三种醇混合物,在声子和光子传感器中均实现了高性能,尤其是对于低浓度情况。例如,在光子传感器中,对于水中浓度为10% 的甲醇,我们分别获得了873 nm/RIU的灵敏度、755的Q值和290 ${\rm RIU}^{-1}$ 的品质因数。声子传感器的结果比光子传感器更高,对于水中浓度为26.8% 的乙醇,我们分别获得了37 ${\rm MHz/ms}^{-1}$ 的灵敏度、1604的Q值和8.4 $({\rm m/s})^{-1}$ 的品质因数。所提出的结构具有不同优点:可在高温下运行、尺寸紧凑、易于制造,并且能用两种不同方法检测醇类,可用于许多化学应用中。