Issue 3, 2014

Cluster analysis of passive air sampling data based on the relative composition of persistent organic pollutants

Abstract

The development of passive air samplers has allowed the measurement of time-integrated concentrations of persistent organic pollutants (POPs) within spatial networks on a variety of scales. Cluster analysis of POP composition may enhance the interpretation of such spatial data. Several methodological aspects of the application of cluster analysis are discussed, including the influence of a dominant pollutant, the role of PAS duplication, and comparison of regional studies. Relying on data from six regional studies in North and South America, Africa, and Asia, we illustrate here how cluster analysis can be used to extract information and gain insights into POP sources and atmospheric transport contributions. Cluster analysis allows classification of PAS samples into those with significant local source contributions and those that represent regional fingerprints. Local emissions, atmospheric transport, and seasonal cycles are identified as being among the major factors determining the variation in POP composition at many sites. By complementing cluster analysis with meteorological data such as air mass back-trajectories, terrain, as well as geographical and socio-economic aspects, a comprehensive picture of the atmospheric contamination of a region by POPs emerges.

Graphical abstract: Cluster analysis of passive air sampling data based on the relative composition of persistent organic pollutants

Supplementary files

Article information

Article type
Paper
Submitted
13 Nov 2013
Accepted
31 Jan 2014
First published
03 Feb 2014

Environ. Sci.: Processes Impacts, 2014,16, 453-463

Author version available

Cluster analysis of passive air sampling data based on the relative composition of persistent organic pollutants

X. Liu and F. Wania, Environ. Sci.: Processes Impacts, 2014, 16, 453 DOI: 10.1039/C3EM00605K

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