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Observation of viscosity transition in alpha-pinene secondary organic aerosol

机译:α-pine烯二次有机气溶胶粘度转变的观察

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Under certain conditions, secondary organic aerosol (SOA) particles can exist in the atmosphere in an amorphous solid or semi-solid state. To determine their relevance to processes such as ice nucleation or chemistry occurring within particles requires knowledge of the temperature and relative humidity (RH) range for SOA to exist in these states. In the Cosmics Leaving Outdoor Droplets (CLOUD) experiment at The European Organisation for Nuclear Research (CERN), we deployed a new in situ optical method to detect the viscous state of alpha-pinene SOA particles and measured their transition from the amorphous highly viscous state to states of lower viscosity. The method is based on the depolarising properties of laboratory-produced non-spherical SOA particles and their transformation to non-depolarising spherical particles at relative humidities near the deliquescence point. We found that particles formed and grown in the chamber developed an asymmetric shape through coagulation. A transition to a spherical shape was observed as the RH was increased to between 35aEuro-% at -10aEuro-A degrees C and 80aEuro-% at -38aEuro-A degrees C, confirming previous calculations of the viscosity-transition conditions. Consequently, alpha-pinene SOA particles exist in a viscous state over a wide range of ambient conditions, including the cirrus region of the free troposphere. This has implications for the physical, chemical, and ice-nucleation properties of SOA and SOA-coated particles in the atmosphere.
机译:在某些条件下,二次有机气溶胶(SOA)粒子可以无定形固体或半固体状态存在于大气中。为了确定它们与粒子中发生的冰核化或化学过程等相关性,需要了解SOA在这些状态下存在的温度和相对湿度(RH)范围。在欧洲核研究组织(CERN)的宇宙离开室外液滴(CLOUD)实验中,我们采用了一种新的原位光学方法来检测α-pine烯SOA颗粒的粘性状态,并测量了它们从非晶态高粘性状态的转变粘度较低的状态。该方法基于实验室生产的非球形SOA颗粒的去极化特性,以及它们在接近潮解点时的相对湿度下转变为非去极化的球形颗粒的能力。我们发现在室内形成和生长的颗粒通过凝结形成了不对称形状。当相对湿度在-10aEuro-A摄氏度下增加到35aEuro-%和-38​​aEuro-A摄氏度下80aEuro-%之间时,观察到球形过渡,这证实了先前对粘度转变条件的计算。因此,α-pine烯SOA颗粒在包括自由对流层的卷云区域在内的各种环境条件下都呈粘性状态。这对大气中SOA和SOA涂层颗粒的物理,化学和冰核化性质有影响。

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