Ng Chee-Loon, Kai Fuu-Ming, Tee Ming-Hui, Tan Nicholas, Hemond Harold F
Singapore-MIT Alliance for Research and Technology (SMART) Centre, 1 CREATE Way, CREATE Tower, #10-01, Singapore 138602, Singapore.
Agency for Science, Technology and Research (A*STAR), National Metrology Centre (NMC), 1 Science Park Drive, Singapore 118221, Singapore.
Sensors (Basel). 2018 Jan 18;18(1):265. doi: 10.3390/s18010265.
Air pollution exposure causes seven million deaths per year, according to the World Health Organization. Possessing knowledge of air quality and sources of air pollution is crucial for managing air pollution and providing early warning so that a swift counteractive response can be carried out. An optical prototype sensor (AtmOptic) capable of scattering and absorbance measurements has been developed to target in situ sensing of fine particulate matter (PM2.5) and volatile organic compounds (VOCs). For particulate matter testing, a test chamber was constructed and the emission of PM2.5 from incense burning inside the chamber was measured using the AtmOptic. The weight of PM2.5 particles was collected and measured with a filter to determine their concentration and the sensor signal-to-concentration correlation. The results of the AtmOptic were also compared and found to trend well with the Dylos DC 1100 Pro air quality monitor. The absorbance spectrum of VOCs emitted from various laboratory chemicals and household products as well as a two chemical mixtures were recorded. The quantification was demonstrated, using toluene as an example, by calibrating the AtmOptic with compressed gas standards containing VOCs at different concentrations. The results demonstrated the sensor capabilities in measuring PM2.5 and volatile organic compounds.
根据世界卫生组织的数据,每年有700万人死于空气污染。了解空气质量和空气污染来源对于控制空气污染和提供早期预警至关重要,以便能够迅速采取应对措施。一种能够进行散射和吸光度测量的光学原型传感器(AtmOptic)已被开发出来,用于原位检测细颗粒物(PM2.5)和挥发性有机化合物(VOCs)。对于颗粒物测试,构建了一个测试腔,并使用AtmOptic测量了测试腔内焚香产生的PM2.5排放。收集PM2.5颗粒的重量并用过滤器进行测量,以确定其浓度以及传感器信号与浓度的相关性。还将AtmOptic的结果与Dylos DC 1100 Pro空气质量监测仪进行了比较,发现两者趋势吻合良好。记录了各种实验室化学品和家用产品以及两种化学混合物排放的VOCs的吸收光谱。以甲苯为例,通过用含有不同浓度VOCs的压缩气体标准对AtmOptic进行校准,证明了其定量能力。结果展示了该传感器在测量PM2.5和挥发性有机化合物方面的能力。