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Dive into the research topics where Douglas B. Collins is active.

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Featured researches published by Douglas B. Collins.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Bringing the ocean into the laboratory to probe the chemical complexity of sea spray aerosol

Kimberly A. Prather; Timothy H. Bertram; Vicki H. Grassian; Grant B. Deane; M. Dale Stokes; Paul J. DeMott; Lihini I. Aluwihare; Brian Palenik; Farooq Azam; John H. Seinfeld; Ryan C. Moffet; Mario J. Molina; Christopher D. Cappa; Franz M. Geiger; G. C. Roberts; Lynn M. Russell; Andrew P. Ault; Jonas Baltrusaitis; Douglas B. Collins; C. E. Corrigan; Luis A. Cuadra-Rodriguez; Carlena J. Ebben; Sara Forestieri; Timothy L. Guasco; Scott Hersey; Michelle J. Kim; William Lambert; R. L. Modini; Wilton Mui; Byron E. Pedler

The production, size, and chemical composition of sea spray aerosol (SSA) particles strongly depend on seawater chemistry, which is controlled by physical, chemical, and biological processes. Despite decades of studies in marine environments, a direct relationship has yet to be established between ocean biology and the physicochemical properties of SSA. The ability to establish such relationships is hindered by the fact that SSA measurements are typically dominated by overwhelming background aerosol concentrations even in remote marine environments. Herein, we describe a newly developed approach for reproducing the chemical complexity of SSA in a laboratory setting, comprising a unique ocean-atmosphere facility equipped with actual breaking waves. A mesocosm experiment was performed in natural seawater, using controlled phytoplankton and heterotrophic bacteria concentrations, which showed SSA size and chemical mixing state are acutely sensitive to the aerosol production mechanism, as well as to the type of biological species present. The largest reduction in the hygroscopicity of SSA occurred as heterotrophic bacteria concentrations increased, whereas phytoplankton and chlorophyll-a concentrations decreased, directly corresponding to a change in mixing state in the smallest (60–180 nm) size range. Using this newly developed approach to generate realistic SSA, systematic studies can now be performed to advance our fundamental understanding of the impact of ocean biology on SSA chemical mixing state, heterogeneous reactivity, and the resulting climate-relevant properties.


Environmental Science & Technology | 2013

Size-Dependent Changes in Sea Spray Aerosol Composition and Properties with Different Seawater Conditions

Andrew P. Ault; Ryan C. Moffet; Jonas Baltrusaitis; Douglas B. Collins; Matthew J. Ruppel; Luis A. Cuadra-Rodriguez; Defeng Zhao; Timothy L. Guasco; Carlena J. Ebben; Franz M. Geiger; Timothy H. Bertram; Kimberly A. Prather; Vicki H. Grassian

A great deal of uncertainty exists regarding the chemical diversity of particles in sea spray aerosol (SSA), as well as the degree of mixing between inorganic and organic species in individual SSA particles. Therefore, in this study, single particle analysis was performed on SSA particles, integrating transmission electron microscopy with energy dispersive X-ray analysis and scanning transmission X-ray microscopy with near edge X-ray absorption fine structure spectroscopy, with a focus on quantifying the relative fractions of different particle types from 30 nm to 1 μm. SSA particles were produced from seawater in a unique ocean-atmosphere facility equipped with breaking waves. Changes to the SSA composition and properties after the addition of biological (bacteria and phytoplankton) and organic material (ZoBell growth media) were probed. Submicrometer SSA particles could be separated into two distinct populations: one with a characteristic sea salt core composed primarily of NaCl and an organic carbon and Mg(2+) coating (SS-OC), and a second type consisting of organic carbon (OC) species which are more homogeneously mixed with cations and anions, but not chloride. SS-OC particles exhibit a wide range of sizes, compositions, morphologies, and distributions of elements within each particle. After addition of biological and organic material to the seawater, a change occurs in particle morphology and crystallization behavior associated with increasing organic content for SS-OC particles. The fraction of OC-type particles, which are mainly present below 180 nm, becomes dramatically enhanced with increased biological activity. These changes with size and seawater composition have important implications for atmospheric processes such as cloud droplet activation and heterogeneous reactivity.


Proceedings of the National Academy of Sciences of the United States of America | 2016

Sea spray aerosol as a unique source of ice nucleating particles

Paul J. DeMott; Thomas C. J. Hill; Christina S. McCluskey; Kimberly A. Prather; Douglas B. Collins; Ryan C. Sullivan; Matthew J. Ruppel; Ryan H. Mason; Victoria E. Irish; Taehyoung Lee; Chung Yeon Hwang; Tae Siek Rhee; Jefferson R. Snider; Gavin R. McMeeking; Suresh Dhaniyala; Ernie R. Lewis; Jeremy J. B. Wentzell; Jonathan P. D. Abbatt; Christopher Lee; Camille M. Sultana; Andrew P. Ault; Jessica L. Axson; Myrelis Diaz Martinez; Ingrid Venero; G. Santos-Figueroa; M. Dale Stokes; Grant B. Deane; Olga L. Mayol-Bracero; Vicki H. Grassian; Timothy H. Bertram

Ice nucleating particles (INPs) are vital for ice initiation in, and precipitation from, mixed-phase clouds. A source of INPs from oceans within sea spray aerosol (SSA) emissions has been suggested in previous studies but remained unconfirmed. Here, we show that INPs are emitted using real wave breaking in a laboratory flume to produce SSA. The number concentrations of INPs from laboratory-generated SSA, when normalized to typical total aerosol number concentrations in the marine boundary layer, agree well with measurements from diverse regions over the oceans. Data in the present study are also in accord with previously published INP measurements made over remote ocean regions. INP number concentrations active within liquid water droplets increase exponentially in number with a decrease in temperature below 0 °C, averaging an order of magnitude increase per 5 °C interval. The plausibility of a strong increase in SSA INP emissions in association with phytoplankton blooms is also shown in laboratory simulations. Nevertheless, INP number concentrations, or active site densities approximated using “dry” geometric SSA surface areas, are a few orders of magnitude lower than corresponding concentrations or site densities in the surface boundary layer over continental regions. These findings have important implications for cloud radiative forcing and precipitation within low-level and midlevel marine clouds unaffected by continental INP sources, such as may occur over the Southern Ocean.


Chemical Reviews | 2015

Chemistry and Related Properties of Freshly Emitted Sea Spray Aerosol

Patricia K. Quinn; Douglas B. Collins; Vicki H. Grassian; Kimberly A. Prather; T. S. Bates

2 Aerosol 3 Patricia K. Quinn,*,† Douglas B. Collins,‡ Vicki H. Grassian,‡,§ Kimberly A. Prather,‡ 4 and Timothy S. Bates 5 †Pacific Marine Environmental Laboratory, National Oceanic and Atmospheric Administration, Seattle, Washington 98115, United 6 States 7 ‡Center for Aerosol Impacts on Climate and the Environment, University of California at San Diego, La Jolla, California 92024, 8 United States 9 Department of Chemistry, University of Iowa, Iowa City, Iowa 52242, United States 10 Joint Institute for the Study of the Atmosphere and Ocean, University of Washington, Seattle, Washington 98105, United States 1


Journal of the American Chemical Society | 2013

Inside versus Outside: Ion Redistribution in Nitric Acid Reacted Sea Spray Aerosol Particles as Determined by Single Particle Analysis

Andrew P. Ault; Timothy L. Guasco; Olivia S. Ryder; Jonas Baltrusaitis; Luis A. Cuadra-Rodriguez; Douglas B. Collins; Matthew J. Ruppel; Timothy H. Bertram; Kimberly A. Prather; Vicki H. Grassian

Single particle analysis of individual sea spray aerosol particles shows that cations (Na(+), K(+), Mg(2+), and Ca(2+)) within individual particles undergo a spatial redistribution after heterogeneous reaction with nitric acid, along with the development of a more concentrated layer of organic matter at the surface of the particle. These data suggest that specific ion and aerosol pH effects play an important role in aerosol particle structure in ways that have not been previously recognized.


Environmental Science & Technology | 2014

Transition metal associations with primary biological particles in sea spray aerosol generated in a wave channel.

Timothy L. Guasco; Luis A. Cuadra-Rodriguez; Byron E. Pedler; Andrew P. Ault; Douglas B. Collins; Defeng Zhao; Michelle J. Kim; Matthew J. Ruppel; Scott C. Wilson; Robert S. Pomeroy; Vicki H. Grassian; Farooq Azam; Timothy H. Bertram; Kimberly A. Prather

In the ocean, breaking waves generate air bubbles which burst at the surface and eject sea spray aerosol (SSA), consisting of sea salt, biogenic organic species, and primary biological aerosol particles (PBAP). Our overall understanding of atmospheric biological particles of marine origin remains poor. Here, we perform a control experiment, using an aerosol time-of-flight mass spectrometer to measure the mass spectral signatures of individual particles generated by bubbling a salt solution before and after addition of heterotrophic marine bacteria. Upon addition of bacteria, an immediate increase occurs in the fraction of individual particle mass spectra containing magnesium, organic nitrogen, and phosphate marker ions. These biological signatures are consistent with 21% of the supermicrometer SSA particles generated in a previous study using breaking waves in an ocean-atmosphere wave channel. Interestingly, the wave flume mass spectral signatures also contain metal ions including silver, iron, and chromium. The nascent SSA bioparticles produced in the wave channel are hypothesized to be as follows: (1) whole or fragmented bacterial cells which bioaccumulated metals and/or (2) bacteria-derived colloids or biofilms which adhered to the metals. This study highlights the potential for transition metals, in combination with specific biomarkers, to serve as unique indicators for the presence of marine PBAP, especially in metal-impacted coastal regions.


Journal of Physical Chemistry Letters | 2014

Heterogeneous reactivity of nitric acid with nascent sea spray aerosol: Large differences observed between and within individual particles

Andrew P. Ault; Timothy L. Guasco; Jonas Baltrusaitis; Olivia S. Ryder; Jonathan V. Trueblood; Douglas B. Collins; Matthew J. Ruppel; Luis A. Cuadra-Rodriguez; Kimberly A. Prather; Vicki H. Grassian

Current climate and atmospheric chemistry models assume that all sea spray particles react as if they are pure NaCl. However, recent studies of sea spray aerosol particles have shown that distinct particle types exist (including sea salt, organic carbon, and biological particles) as well as mixtures of these and, within each particle type, there is a range of single-particle chemical compositions. Because of these differences, individual particles should display a range of reactivities with trace atmospheric gases. Herein, to address this, we study the composition of individual sea spray aerosol particles after heterogeneous reaction with nitric acid. As expected, a replacement reaction of chloride with nitrate is observed; however, there is a large range of reactivities spanning from no reaction to complete reaction between and within individual sea spray aerosol particles. These data clearly support the need for laboratory studies of individual, environmentally relevant particles to improve our fundamental understanding as to the properties that determine reactivity.


Journal of Physical Chemistry A | 2015

Advancing Model Systems for Fundamental Laboratory Studies of Sea Spray Aerosol Using the Microbial Loop

Christopher Lee; Camille M. Sultana; Douglas B. Collins; Mitchell V. Santander; Jessica L. Axson; Francesca Malfatti; Gavin C. Cornwell; Joshua R. Grandquist; Grant B. Deane; M. Dale Stokes; Farooq Azam; Vicki H. Grassian; Kimberly A. Prather

Sea spray aerosol (SSA) particles represent one of the most abundant surfaces available for heterogeneous reactions to occur upon and thus profoundly alter the composition of the troposphere. In an effort to better understand tropospheric heterogeneous reaction processes, fundamental laboratory studies must be able to accurately reproduce the chemical complexity of SSA. Here we describe a new approach that uses microbial processes to control the composition of seawater and SSA particle composition. By inducing a phytoplankton bloom, we are able to create dynamic ecosystem interactions between marine microorganisms, which serve to alter the organic mixtures present in seawater. Using this controlled approach, changes in seawater composition become reflected in the chemical composition of SSA particles 4 to 10 d after the peak in chlorophyll-a. This approach for producing and varying the chemical complexity of a dominant tropospheric aerosol provides the foundation for further investigations of the physical and chemical properties of realistic SSA particles under controlled conditions.


ACS central science | 2015

The Impact of Aerosol Particle Mixing State on the Hygroscopicity of Sea Spray Aerosol.

Steven Schill; Douglas B. Collins; Christopher Lee; Holly S. Morris; Gordon A. Novak; Kimberly A. Prather; Patricia K. Quinn; Camille M. Sultana; Alexei V. Tivanski; Kathryn Zimmermann; Christopher D. Cappa; Timothy H. Bertram

Aerosol particles influence global climate by determining cloud droplet number concentrations, brightness, and lifetime. Primary aerosol particles, such as those produced from breaking waves in the ocean, display large particle–particle variability in chemical composition, morphology, and physical phase state, all of which affect the ability of individual particles to accommodate water and grow into cloud droplets. Despite such diversity in molecular composition, there is a paucity of methods available to assess how particle–particle variability in chemistry translates to corresponding differences in aerosol hygroscopicity. Here, an approach has been developed that allows for characterization of the distribution of aerosol hygroscopicity within a chemically complex population of atmospheric particles. This methodology, when applied to the interpretation of nascent sea spray aerosol, provides a quantitative framework for connecting results obtained using molecular mimics generated in the laboratory with chemically complex ambient aerosol. We show that nascent sea spray aerosol, generated in situ in the Atlantic Ocean, displays a broad distribution of particle hygroscopicities, indicative of a correspondingly broad distribution of particle chemical compositions. Molecular mimics of sea spray aerosol organic material were used in the laboratory to assess the volume fractions and molecular functionality required to suppress sea spray aerosol hygroscopicity to the extent indicated by field observations. We show that proper accounting for the distribution and diversity in particle hygroscopicity and composition are important to the assessment of particle impacts on clouds and global climate.


ACS central science | 2016

Sea Spray Aerosol Structure and Composition Using Cryogenic Transmission Electron Microscopy.

Joseph P. Patterson; Douglas B. Collins; Jennifer M. Michaud; Jessica L. Axson; Camile M. Sultana; Trevor Moser; Abigail C. Dommer; Jack Conner; Vicki H. Grassian; M. Dale Stokes; Grant B. Deane; James E. Evans; Michael D. Burkart; Kimberly A. Prather; Nathan C. Gianneschi

The composition and surface properties of atmospheric aerosol particles largely control their impact on climate by affecting their ability to uptake water, react heterogeneously, and nucleate ice in clouds. However, in the vacuum of a conventional electron microscope, the native surface and internal structure often undergo physicochemical rearrangement resulting in surfaces that are quite different from their atmospheric configurations. Herein, we report the development of cryogenic transmission electron microscopy where laboratory generated sea spray aerosol particles are flash frozen in their native state with iterative and controlled thermal and/or pressure exposures and then probed by electron microscopy. This unique approach allows for the detection of not only mixed salts, but also soft materials including whole hydrated bacteria, diatoms, virus particles, marine vesicles, as well as gel networks within hydrated salt droplets—all of which will have distinct biological, chemical, and physical processes. We anticipate this method will open up a new avenue of analysis for aerosol particles, not only for ocean-derived aerosols, but for those produced from other sources where there is interest in the transfer of organic or biological species from the biosphere to the atmosphere.

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Timothy H. Bertram

University of Wisconsin-Madison

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Grant B. Deane

University of California

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M. Dale Stokes

University of California

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