研究目的
To develop a novel 2D near-infrared plasmonic tungsten oxide (WOx) enabled ultrasensitive fiber optics gas sensor for detecting NO2 gas molecules with high sensitivity and selectivity.
研究成果
The developed 2D plasmonic WOx fiber optics gas sensor demonstrates exceptional sensitivity and selectivity to NO2, with a detection limit of 8 ppb at 160 °C. This represents a significant advancement over existing fiber optics NO2 sensors, offering a promising approach for environmental monitoring and industrial applications.
研究不足
The sensor's performance is optimized at a specific temperature (160 °C), which may limit its application in environments where temperature control is challenging. The study focuses on NO2 detection, and the sensor's response to other gases is significantly lower, indicating a need for further research to broaden its applicability.
1:Experimental Design and Method Selection:
The study employs a side-polished D-shape single mode optical fiber coated with 2D plasmonic WOx for gas sensing. The plasmon resonance wavelength of WOx is matched with telecommunications wavelengths to enhance light-matter interaction.
2:Sample Selection and Data Sources:
2D WOx is synthesized using a wet chemical technique, characterized by AFM, TEM, HRTEM, XRD, and XPS to confirm its properties.
3:List of Experimental Equipment and Materials:
Includes a D-shape optical fiber, 2D WOx, AFM (Bruker Dimension Icon), TEM (JEOL-1010), HRTEM (JEOL 2100F), XPS (Thermo Scientific K-alpha), UV–vis–NIR spectrophotometer (PerkinElmer Lambda 1050), and Raman spectrometer (Horiba Scientific LabRAM).
4:Experimental Procedures and Operational Workflow:
The sensor's response to NO2 is measured by observing changes in transmission power through the fiber, with tests conducted at various temperatures and gas concentrations.
5:Data Analysis Methods:
The sensor's performance is evaluated based on response magnitude, response time, and selectivity towards NO2 compared to other gases.
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