Measuring and modeling mercury in the atmosphere: a critical review
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Published:2015-05-26
Issue:10
Volume:15
Page:5697-5713
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Gustin M. S.,Amos H. M.,Huang J.,Miller M. B.,Heidecorn K.
Abstract
Abstract. Mercury (Hg) is a global health concern due to its toxicity and ubiquitous presence in the environment. Here we review current methods for measuring the forms of Hg in the atmosphere and models used to interpret these data. There are three operationally defined forms of atmospheric Hg: gaseous elemental mercury (GEM), gaseous oxidized mercury (GOM), and particulate bound mercury (PBM). There is relative confidence in GEM measurements (collection on a gold surface), but GOM (collection on potassium chloride (KCl)-coated denuder) and PBM (collected using various methods) are less well understood. Field and laboratory investigations suggest the methods to measure GOM and PBM are impacted by analytical interferences that vary with environmental setting (e.g., ozone, relative humidity), and GOM concentrations measured by the KCl-coated denuder can be too low by a factor of 1.6 to 12 depending on the chemical composition of GOM. The composition of GOM (e.g., HgBr2, HgCl2, HgBrOH) varies across space and time. This has important implications for refining existing measurement methods and developing new ones, model/measurement comparisons, model development, and assessing trends. Unclear features of previously published data may now be re-examined and possibly explained, which is demonstrated through a case study. Priorities for future research include identification of GOM compounds in ambient air and development of information on their chemical and physical properties and GOM and PBM calibration systems. With this information, identification of redox mechanisms and associated rate coefficients may be developed.
Funder
Division of Atmospheric and Geospace Sciences
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference144 articles.
1. Aas, W. (Ed.).: Data quality 2004, quality assurance, and field comparisons, C587 EMEP/CCC-Report 4/2006, NILU, Kjeller, Norway 2006. 2. AMAP/UNEP: Technical Background Report for the Global Mercury Assessment 2013., Arctic Monitoring and Assessment Program, Oslo, Norway / UNEP Chemicals Branch, Geneva, Switzerland, VI, 263 pp., http://www.unep.org/PDF/PressReleases/GlobalMercuryAssessment2013.pdf (last access: 20 May 2015), 2013. 3. Ambrose, J. L., Lyman, S. N., Huang, J., Gustin, M., and Jaffe, D. A.: Fast Time Resolution Oxidized Mercury Measurements with the UW Detector for Oxidized Hg Species (DOHGS) during the Reno Atmospheric Mercury Intercomparison Experiment, Environ. Sci. Technol., 47, 7285–7294, 2013. 4. Amos, H. M., Jacob, D. J., Holmes, C. D., Fisher, J. A., Wang, Q., Yantosca, R. M., Corbitt, E. S., Galarneau, E., Rutter, A. P., Gustin, M. S., Steffen, A., Schauer, J. J., Graydon, J. A., St Louis, V. L., Talbot, R. W., Edgerton, E. S., Zhang, Y., and Sunderland, E. M.: Gas-particle partitioning of atmospheric Hg(II) and its effect on global mercury deposition, Atmos. Chem. Phys., 12, 591–603, https://doi.org/10.5194/acp-12-591-2012, 2012. 5. Barghigiani, C., Ristori, T., and Cortopassi, M.: Air mercury measurement and interference of atmospheric contaminants with gold traps, Environ. Technol., 12, 935–941, 1991.
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