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Nitrate radicals and biogenic volatile organic compounds: Oxidation, mechanisms, and organic aerosol

  • Nga Lee Ng
  • , Steven S. Brown
  • , Alexander T. Archibald
  • , Elliot Atlas
  • , Ronald C. Cohen
  • , John N. Crowley
  • , Douglas A. Day
  • , Neil M. Donahue
  • , Juliane L. Fry
  • , Hendrik Fuchs
  • , Robert J. Griffin
  • , Marcelo I. Guzman
  • , Hartmut Herrmann
  • , Alma Hodzic
  • , Yoshiteru Iinuma
  • , Astrid Kiendler-Scharr
  • , Ben H. Lee
  • , Deborah J. Luecken
  • , Jingqiu Mao
  • , Robert McLaren
  • Anke Mutzel, Hans D. Osthoff, Bin Ouyang, Benedicte Picquet-Varrault, Ulrich Platt, Havala O.T. Pye, Yinon Rudich, Rebecca H. Schwantes, Manabu Shiraiwa, Jochen Stutz, Joel A. Thornton, Andreas Tilgner, Brent J. Williams, Rahul A. Zaveri

Producción científica: Articlerevisión exhaustiva

441 Citas (Scopus)

Resumen

Oxidation of biogenic volatile organic compounds (BVOC) by the nitrate radical (NO3) represents one of the important interactions between anthropogenic emissions related to combustion and natural emissions from the biosphere. This interaction has been recognized for more than 3 decades, during which time a large body of research has emerged from laboratory, field, and modeling studies. NO3-BVOC reactions influence air quality, climate and visibility through regional and global budgets for reactive nitrogen (particularly organic nitrates), ozone, and organic aerosol. Despite its long history of research and the significance of this topic in atmospheric chemistry, a number of important uncertainties remain. These include an incomplete understanding of the rates, mechanisms, and organic aerosol yields for NO3-BVOC reactions, lack of constraints on the role of heterogeneous oxidative processes associated with the NO3 radical, the difficulty of characterizing the spatial distributions of BVOC and NO3 within the poorly mixed nocturnal atmosphere, and the challenge of constructing appropriate boundary layer schemes and non-photochemical mechanisms for use in state-of-The-Art chemical transport and chemistry-climate models.

This review is the result of a workshop of the same title held at the Georgia Institute of Technology in June 2015. The first half of the review summarizes the current literature on NO3-BVOC chemistry, with a particular focus on recent advances in instrumentation and models, and in organic nitrate and secondary organic aerosol (SOA) formation chemistry. Building on this current understanding, the second half of the review outlines impacts of NO3-BVOC chemistry on air quality and climate, and suggests critical research needs to better constrain this interaction to improve the predictive capabilities of atmospheric models.

Idioma originalEnglish
Páginas (desde-hasta)2103-2162
Número de páginas60
PublicaciónAtmospheric Chemistry and Physics
Volumen17
N.º3
DOI
EstadoPublished - feb 13 2017

Nota bibliográfica

Publisher Copyright:
© Author(s) 2017.

Financiación

FinanciadoresNúmero del financiador
UK Industrial Decarbonization Research and Innovation Centre
National Science Foundation Arctic Social Science Program1360745, 0753200, 1360834, 1555034, 1240604, 1255290, 1352972
French Agence Nationale de la RechercheANR-12-BS06-0017
Natural Environment Research CouncilNE/M00273X/1

    ODS de las Naciones Unidas

    Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible

    1. Climate action
      Climate action

    ASJC Scopus subject areas

    • Atmospheric Science

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