Pakfetrat Faezeh, Bahadoran Mahdi, Dabagh Shadab, Chiavaioli Francesco
Department of Physics, Shiraz University of Technology, Shiraz,, 31371555, Fars, Iran.
Institute of Applied Physics "Nello Carrara", National Research Council of Italy (CNR), Sesto Fiorentino, 50019, Italy.
Sci Rep. 2025 Aug 29;15(1):31822. doi: 10.1038/s41598-025-17208-6.
Monitoring of CO is crucial because of its profound impact on both environmental and human health. A novel highly sensitive refractive index (RI) sensor, utilizing a double-slot microring resonating structure, has been designed and numerically assessed for the sensitive detection of gas media. The structure consisted of a circular microring resonator nested in a racetrack resonating configuration mimicking the structure of an eye-shaped microring resonator (ESMRR). This system was simulated and designed for a GaAs double-slot core waveguide deposited on a suitable AlGaAs substrate. Optical transfer function of ESMRR and related equations were derived using Mason rule, while the numerical analysis was performed using the variational finite difference time domain (var- FDTD) method. The free spectral range (FSR) was extended to 137.68 nm that led to a remarkable bulk sensitivity of 1217.39 nm/RIU and a resolution of 4.93 × 10 RIU. The proposed sensing structure was envisioned for CO sensing and demonstrated an impressive sensitivity of 24.4 pm/ppm for CO detection with an estimated detection limit of 0.82 ppm.
由于一氧化碳(CO)对环境和人类健康都有深远影响,因此对其进行监测至关重要。一种利用双槽微环谐振结构的新型高灵敏度折射率(RI)传感器已被设计出来,并通过数值评估用于气体介质的灵敏检测。该结构由嵌套在模仿眼形微环谐振器(ESMRR)结构的跑道形谐振配置中的圆形微环谐振器组成。该系统是针对沉积在合适的AlGaAs衬底上的GaAs双槽芯波导进行模拟和设计的。利用梅森法则推导了ESMRR的光学传递函数及相关方程,同时使用变分有限差分时域(var-FDTD)方法进行了数值分析。自由光谱范围(FSR)扩展到了137.68 nm,这导致了1217.39 nm/RIU的显著体灵敏度和4.93×10 RIU的分辨率。所提出的传感结构被设想用于CO传感,并展示了令人印象深刻的24.4 pm/ppm的CO检测灵敏度,估计检测限为0.82 ppm。