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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 Abbatt
  • , Christopher Lee
  • , Camille M. Sultana
  • Andrew P. Ault, Jessica L. Axson, Myrelis Diaz Martinez, Ingrid Venero, Gilmarie Santos-Figueroa, M. Dale Stokes, Grant B. Deane, Olga L. Mayol-Bracero, Vicki H. Grassian, Timothy H. Bertram, Allan K. Bertram, Bruce F. Moffett, Gary D. Franc
  • Colorado State University
  • University of California at San Diego
  • Carnegie Mellon University
  • High Tech High North County
  • University of British Columbia
  • Hankuk University of Foreign Studies
  • Korea Polar Research Institute
  • University of Wyoming
  • Now at Handix Scientific Inc
  • Clarkson University
  • Brookhaven National Laboratory
  • Université Laval and Environment and Climate Change Canada
  • University of Toronto
  • University of Michigan, Ann Arbor
  • University of Puerto Rico
  • University of Iowa
  • University of Wisconsin-Madison
  • Ocean Lab

Research output: Contribution to journalArticlepeer-review

409 Scopus citations

Abstract

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 laboratorygenerated 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.

Original languageEnglish
Pages (from-to)5797-5803
Number of pages7
JournalProceedings of the National Academy of Sciences of the United States of America
Volume113
Issue number21
DOIs
StatePublished - May 24 2016
Externally publishedYes

Keywords

  • Clouds
  • Ice nucleation
  • Marine aerosols

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