Zhang Yue, Liu Pengfei, Gong Zhaoheng, Geiger Franz M, Martin Scot T
School of Engineering and Applied Sciences, Harvard University; Department of Environmental Science and Engineering, Gillings School of Global Public Health, University of North Carolina, Chapel Hill;
School of Engineering and Applied Sciences, Harvard University.
J Vis Exp. 2018 Dec 15(142). doi: 10.3791/55684.
Organic particulate matter (PM) is increasingly recognized as important to the Earth's climate system as well as public health in urban regions, and the production of synthetic PM for laboratory studies have become a widespread necessity. Herein, experimental protocols demonstrate approaches to produce aerosolized organic PM by α-pinene ozonolysis in a flow tube reactor. Methods are described for measuring the size distributions and morphology of the aerosol particles. The video demonstrates basic operations of the flow tube reactor and related instrumentation. The first part of the video shows the procedure for preparing gas-phase reactants, ozonolysis, and production of organic PM. The second part of the video shows the procedures for determining the properties of the produced particle population. The particle number-diameter distributions show different stages of particle growth, namely condensation, coagulation, or a combination of both, depending on reaction conditions. The particle morphology is characterized by an aerosol particle mass analyzer (APM) and a scanning electron microscope (SEM). The results confirm the existence of non-spherical particles that have grown from coagulation for specific reaction conditions. The experimental results also indicate that the flow tube reactor can be used to study the physical and chemical properties of organic PM for relatively high concentrations and short time frames.
有机颗粒物(PM)对地球气候系统以及城市地区的公众健康日益重要,因此,为实验室研究生产合成PM已成为普遍需求。在此,实验方案展示了在流动管反应器中通过α-蒎烯臭氧分解产生雾化有机PM的方法。描述了测量气溶胶颗粒尺寸分布和形态的方法。该视频展示了流动管反应器及相关仪器的基本操作。视频的第一部分展示了制备气相反应物、臭氧分解以及生产有机PM的过程。视频的第二部分展示了确定所产生颗粒群体性质的过程。颗粒数直径分布显示了颗粒生长的不同阶段,即凝聚、凝结或两者的结合,这取决于反应条件。颗粒形态通过气溶胶颗粒质量分析仪(APM)和扫描电子显微镜(SEM)进行表征。结果证实了在特定反应条件下通过凝结生长形成的非球形颗粒的存在。实验结果还表明,流动管反应器可用于在相对高浓度和短时间范围内研究有机PM的物理和化学性质。