Amorphous and crystalline aerosol particles interacting with water vapor: conceptual framework and experimental evidence for restructuring, phase transitions and kinetic limitations
Аморфные и кристаллические аэрозольные частицы, взаимодействующие с водяным паром: концептуальная основа и экспериментальные свидетельства перестройки, фазовых переходов и кинетических ограничений
2009-12-16
SCID: 54.1/22ekmeqj
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Köhler modelamorphous aerosol particlescloud condensation nucleihygroscopicity tandem differential mobility analyzerphase transitions
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Abstract (AI)
Abstract. Interactions with water are crucial for the properties, transformation and climate effects of atmospheric aerosols. Here we present a conceptual framework for the interaction of amorphous aerosol particles with water vapor, outlining characteristic features and differences in comparison to crystalline particles. We used a hygroscopicity tandem differential mobility analyzer (H-TDMA) to characterize the hydration and dehydration of crystalline ammonium sulfate, amorphous oxalic acid and amorphous levoglucosan particles (diameter ~100 nm, relative humidity 5–95% at 298 K). The experimental data and accompanying Köhler model calculations provide new insights into particle microstructure, surface adsorption, bulk absorption, phase transitions and hygroscopic growth. The results of these and related investigations lead to the following conclusions: (1) Many organic substances, including carboxylic acids, carbohydrates and proteins, tend to form amorphous rather than crystalline phases upon drying of aqueous solution droplets. Depending on viscosity and microstructure, the amorphous phases can be classified as glasses, rubbers, gels or viscous liquids. (2) Amorphous organic substances tend to absorb water vapor and undergo gradual deliquescence and hygroscopic growth at lower relative humidity than their crystalline counterparts. (3) In the course of hydration and dehydration, certain organic substances can form rubber- or gel-like structures (supramolecular networks) and undergo transitions between swollen and collapsed network structures. (4) Organic gels or (semi-)solid amorphous shells (glassy, rubbery, ultra-viscous) with low molecular diffusivity can kinetically limit the uptake and release of water and may influence the hygroscopic growth and activation of aerosol particles as cloud condensation nuclei (CCN) and ice nuclei (IN). Moreover, (semi-)solid amorphous phases may influence the uptake of gaseous photo-oxidants and the chemical transformation and aging of atmospheric aerosols. (5) The shape and porosity of amorphous and crystalline particles formed upon dehydration of aqueous solution droplets depend on chemical composition and drying conditions. The apparent volume void fractions of particles with highly porous structures can range up to ~50% or more (xerogels, aerogels). (6) For efficient description of water uptake and phase transitions of aerosol particles, we propose not to limit the terms deliquescence and efflorescence to equilibrium phase transitions of crystalline substances. Instead we propose generalized definitions according to which amorphous and crystalline components can undergo gradual or prompt, partial or full deliquescence or efflorescence. We suggest that (semi-)solid amorphous phases may be important not only in the upper atmosphere as suggested in recent studies of glass formation at low temperatures. Depending on relative humidity, (semi-)solid phases and moisture-induced glass transitions may also play a role in gas-particle interactions at ambient temperatures in the lower atmosphere.
Key Findings
1
Amorphous organic particles generally absorb water and undergo gradual deliquescence and hygroscopic growth at lower relative humidity than crystalline counterparts.
2
H-TDMA measurements of ~100 nm ammonium sulfate, oxalic acid, and levoglucosan particles across 5–95% relative humidity, supported by Köhler modeling, provide experimental evidence for differing hydration and dehydration behavior.
3
Hydration and dehydration can produce reversible transitions between swollen and collapsed supramolecular network structures in rubbery or gel-like organic phases.
4
Low-diffusivity amorphous shells and organic gels can kinetically limit water uptake and release, thereby affecting hygroscopic growth and aerosol activation as cloud condensation and ice nuclei.
5
Many organic compounds, including carboxylic acids, carbohydrates, and proteins, form amorphous glasses, rubbers, gels, or viscous liquids rather than crystals when aqueous droplets dry.
6
The paper develops a conceptual framework distinguishing amorphous and crystalline aerosol interactions with water vapor, including adsorption, absorption, phase transitions, and kinetic limitations.
Research Object
Amorphous and crystalline atmospheric aerosol particles interacting with water vapor
Research Subject
Particle restructuring, phase transitions, hygroscopic growth, and kinetic limitations of water-vapor uptake and release
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2009-12-16
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