Skip to main navigation Skip to search Skip to main content

A study of photochemical and physical processes affecting carbonyl compounds in the Arctic atmospheric boundary layer

  • Amanda M. Grannas
  • , Paul B. Shepson
  • , Christophe Guimbaud
  • , Ann Louise Sumner
  • , Mary Albert
  • , William Simpson
  • , Florent Dominé
  • , Hacene Boudries
  • , Jan Bottenheim
  • , Harald J. Beine
  • , Richard Honrath
  • , Xianliang Zhou
  • Purdue University
  • US Army Cold Regions Research and Engineering Lab
  • University of Alaska Fairbanks
  • Laboratoire de Glaciologie et Géophysique de l'Environnement (LGGE) UMR5183
  • Environment and Climate Change Canada
  • National Research Council of Italy
  • Michigan Technological University
  • SUNY Albany

Research output: Contribution to journalArticlepeer-review

81 Scopus citations

Abstract

Experiments were conducted during the ALERT 2000 field campaign aimed at understanding the role of air-snow interactions in carbonyl compound chemistry and the associated ozone depletion in the atmospheric boundary layer. Under sunlit conditions, we find that formaldehyde, acetaldehyde and acetone exhibit a significant diel cycle with average ambient air concentrations of 166, 53 and 385ppt, respectively. A box model of Arctic surface layer chemistry was used to understand the diel behavior of carbonyl compound concentrations at Alert, Nunavut, Canada, with a focus on the chemical and physical processes that affect carbonyl compounds. Results of the study showed that the measured carbonyl compound concentrations can only be simulated when a radiation-dependent snowpack source term (possibly photochemistry) and a temperature-dependent sink (physical uptake on snow grains) of carbonyl compounds were added to the model. We are able to simulate the concentration and amplitude of the observed diel cycle, but not the phase of the cycle. These results help confirm the importance of snowpack chemistry and physical processes with respect to carbonyl compound concentrations in the Arctic surface boundary layer, and reveal weakness in the details of our understanding.

Original languageEnglish
Pages (from-to)2733-2742
Number of pages10
JournalAtmospheric Environment
Volume36
Issue number15-16
DOIs
StatePublished - 2002

Keywords

  • Acetaldehyde
  • Acetone
  • Formaldehyde
  • Polar Sunrise Experiment 2000
  • Snow chemistry

Fingerprint

Dive into the research topics of 'A study of photochemical and physical processes affecting carbonyl compounds in the Arctic atmospheric boundary layer'. Together they form a unique fingerprint.

Cite this