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Atmospheric benzenoid emissions from plants rival those from fossil fuels

  • P. K. Misztal
  • , C. N. Hewitt
  • , J. Wildt
  • , J. D. Blande
  • , A. S.D. Eller
  • , S. Fares
  • , D. R. Gentner
  • , J. B. Gilman
  • , M. Graus
  • , J. Greenberg
  • , A. B. Guenther
  • , A. Hansel
  • , P. Harley
  • , M. Huang
  • , K. Jardine
  • , T. Karl
  • , L. Kaser
  • , F. N. Keutsch
  • , A. Kiendler-Scharr
  • , E. Kleist
  • B. M. Lerner, T. Li, J. Mak, A. C. Nölscher, R. Schnitzhofer, V. Sinha, B. Thornton, C. Warneke, F. Wegener, C. Werner, J. Williams, D. R. Worton, N. Yassaa, A. H. Goldstein
  • University of California at Berkeley
  • National Center for Atmospheric Research
  • Lancaster University
  • Jülich Research Centre
  • University of Eastern Finland
  • University of Colorado Boulder
  • Council for Agricultural Research and Economics
  • Yale University
  • National Oceanic and Atmospheric Administration
  • University of Innsbruck
  • Pacific Northwest National Laboratory
  • Washington State University
  • Estonian University of Life Sciences
  • Lawrence Berkeley National Laboratory
  • University of Wisconsin-Madison
  • Harvard University
  • Max Planck Institute for Chemistry
  • Indian Institute of Science Education and Research Mohali
  • University Northern Colorado
  • University of Bayreuth
  • University of Freiburg
  • Aerosol Dynamics Inc.
  • University of Science and Technology Houari Boumediene
  • Renewable Energy Development Center

Research output: Contribution to journalArticlepeer-review

136 Scopus citations

Abstract

Despite the known biochemical production of a range of aromatic compounds by plants and the presence of benzenoids in floral scents, the emissions of only a few benzenoid compounds have been reported from the biosphere to the atmosphere. Here, using evidence from measurements at aircraft, ecosystem, tree, branch and leaf scales, with complementary isotopic labeling experiments, we show that vegetation (leaves, flowers, and phytoplankton) emits a wide variety of benzenoid compounds to the atmosphere at substantial rates. Controlled environment experiments show that plants are able to alter their metabolism to produce and release many benzenoids under stress conditions. The functions of these compounds remain unclear but may be related to chemical communication and protection against stress. We estimate the total global secondary organic aerosol potential from biogenic benzenoids to be similar to that from anthropogenic benzenoids (∼10 Tg y?1), pointing to the importance of these natural emissions in atmospheric physics and chemistry.

Original languageEnglish
Article number12064
JournalScientific Reports
Volume5
DOIs
StatePublished - Jul 13 2015

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