Liu Yonghao, Wang Shuling, Biswas Priyanka, Palit Prithviraj, Zhou Weidong, Sun Yuze
Department of Electrical Engineering, University of Texas at Arlington, Arlington, Texas, 76019, USA.
Sci Rep. 2019 Mar 12;9(1):4209. doi: 10.1038/s41598-019-41048-w.
We report here a compact vapor sensor based on polymer coated two-dimensional (2D) defect-free photonic crystal slabs (PCS). The sensing mechanism is based on the resonance spectral shift associated with the Fano resonance mode in the PCS due to the vapor molecule adsorption and desorption induced changes in both polymer thickness and polymer refractive index (RI). Sensitivity due to RI and thickness change were theoretically investigated respectively. With three different thicknesses of OV-101 polymer coating, sensitivity and response time were experimentally evaluated for hexane and ethanol vapors. The polymer demonstrated roughly four times higher sensitivity towards the hexane vapor than ethanol vapor. The PCS sensor with thicker polymer coating showed higher sensitivity to both hexane and ethanol vapors but exhibiting longer response time.
我们在此报告一种基于聚合物涂层二维(2D)无缺陷光子晶体平板(PCS)的紧凑型蒸汽传感器。传感机制基于由于蒸汽分子吸附和解吸引起的聚合物厚度和聚合物折射率(RI)变化,与PCS中的法诺共振模式相关的共振光谱位移。分别从理论上研究了由于RI和厚度变化引起的灵敏度。使用三种不同厚度的OV - 101聚合物涂层,对己烷和乙醇蒸汽进行了灵敏度和响应时间的实验评估。该聚合物对己烷蒸汽的灵敏度大约是乙醇蒸汽的四倍。聚合物涂层较厚的PCS传感器对己烷和乙醇蒸汽均表现出更高的灵敏度,但响应时间更长。