Literature DB >> 26401688

Structural Change of Aerosol Particle Aggregates with Exposure to Elevated Relative Humidity.

James F Montgomery1, Steven N Rogak1, Sheldon I Green1, Yuan You2, Allan K Bertram2.   

Abstract

Structural changes of aggregates composed of inorganic salts exposed to relative humidity (RH) between 0 and 80% after formation at selected RH between 0 and 60% were investigated using a tandem differential mobility analyzer (TDMA) and fluorescence microscopy. The TDMA was used to measure a shift in peak mobility diameter for 100-700 nm aggregates of hygroscopic aerosol particles composed of NaCl, Na2SO4, (NH4)2SO4, and nonhygroscopic Al2O3 as the RH was increased. Aggregates of hygroscopic particles were found to shrink when exposed to RH greater than that during the aggregation process. The degree of aggregate restructuring is greater for larger aggregates and greater increases in RH. Growth factors (GF) calculated from mobility diameter measurements as low as 0.77 were seen for NaCl before deliquescence. The GF subsequently increased to 1.23 at 80% RH, indicating growth after deliquescence. Exposure to RH lower than that experienced during aggregation did not result in structural changes. Fluorescent microscopy confirmed that aggregates formed on wire surfaces undergo an irreversible change in structure when exposed to elevated RH. Analysis of 2D movement of aggregates shows a displacement of 5-13% compared to projected length of initial aggregate from a wire surface. Surface tension due to water adsorption within the aggregate structure is a potential cause of the structural changes.

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Year:  2015        PMID: 26401688     DOI: 10.1021/acs.est.5b03157

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  2 in total

1.  Ambient observations of sub-1.0 hygroscopic growth factor and f(RH) values: Case studies from surface and airborne measurements.

Authors:  Amber Ortega; Taylor Shingler; Ewan Crosbie; Anna Wonaschütz; Karl Froyd; Ru-Shan Gao; Joshua Schwarz; Anne Perring; Andreas Beyersdorf; Luke Ziemba; Jose Jimenez; Pedro Campuzano Jost; Armin Wisthaler; Lynn Russell; Armin Sorooshian
Journal:  J Geophys Res Atmos       Date:  2016-11-07       Impact factor: 4.261

2.  Penetration of Water-Soluble Material through Gas-Cleaning Filters.

Authors:  Almuth D Schwarz; Jörg Meyer; Achim Dittler
Journal:  Membranes (Basel)       Date:  2022-08-12
  2 in total

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