Yao Chenyu, Wang Zhen, Wang Qiang, Bian Ye, Chen Chun, Zhang Li, Ren Wei
Appl Opt. 2018 Sep 20;57(27):8005-8010. doi: 10.1364/AO.57.008005.
It is important to reduce the indoor formaldehyde (HCO) level to improve indoor air quality. To investigate the HCO filtration by a novel nanofiber membrane made from metal-organic frameworks (MOFs), we developed a laser absorption gas sensor for real-time HCO monitoring using a room-temperature interband cascade laser (ICL) emitting at 3.6 µm. Wavelength modulation spectroscopy combined with a multipass gas cell (36 m path length) was implemented to achieve a detection sensitivity of 3 ppb HCO at 1-s averaging time. We custom-designed a permeation HCO generator that produces reference HCO/N mixtures with an uncertainty of 6.4% in concentration. With the time-resolved continuous measurements, we observed a high filtration efficiency of 83% for the MOF filter, which, however, decreases linearly to 30% after operating for 3 h. Hence, the ICL-based gas sensor has proved to be a promising technique to assess novel nanomaterials for indoor air purification and pollutant control applications.
降低室内甲醛(HCO)水平对于改善室内空气质量至关重要。为了研究由金属有机框架(MOF)制成的新型纳米纤维膜对HCO的过滤效果,我们开发了一种激光吸收气体传感器,用于使用发射波长为3.6 µm的室温带间级联激光器(ICL)实时监测HCO。采用波长调制光谱结合多程气室(光程长度36 m),在1秒平均时间内实现了3 ppb HCO的检测灵敏度。我们定制设计了一种渗透式HCO发生器,可产生浓度不确定度为6.4%的参考HCO/N混合物。通过时间分辨连续测量,我们观察到MOF过滤器的过滤效率高达83%,然而,在运行3小时后线性下降至30%。因此,基于ICL的气体传感器已被证明是一种很有前景的技术,可用于评估用于室内空气净化和污染物控制应用的新型纳米材料。