Field Portable X-Ray Fluorescence (pXRF) Spectrometry for Chemical Dust Source Characterization: Investigations of Natural and Mining-Related Dust Sources in Greenland (Kangerlussuaq Area)

被引:0
作者
Jens Søndergaard
Christian Juncher Jørgensen
机构
[1] Aarhus University,Department of Bioscience
来源
Water, Air, & Soil Pollution | 2021年 / 232卷
关键词
Environment; Soil; Pollution; Metals; XRF; Olympus Vanta;
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学科分类号
摘要
In this study, we evaluate the use of field portable X-ray fluorescence (pXRF) as a screening tool for dust source characterisation at two sites in Greenland, a natural site near Kangerlussuaq influenced by dust generated by the Greenland Ice Sheet and an anorthosite mine site located 80 km from Kangerlussuaq. Measurements of ground surface samples were done ex-situ in LDPE plastic bags and in-situ at selected locations. Ex-situ measurements were done both before and after drying of samples to evaluate the effect of water content. Further, the effect of XRF cup films and LDPE bag walls was measured to enable element-specific corrections for signal attenuation of the pXRF measurements. Accuracy and precision were evaluated using a matrix blank and three different soil certified reference materials (CRMs). Finally, pXRF data from the two sites were analysed statistically by principal component analysis (PCA) and linear discriminant analysis (LDA) for the purpose of discriminating between dust sources. The pXRF results showed detectable concentrations of the elements: Al, Si, K, Ca, Fe, Sr, Zr and Ba in all samples (and P, Mn, Zn, Rb, Y, Nb, Ta, Pb and Th in some samples). Moreover, the results showed good accuracies for 21 elements in the CRMs. The PCA/LDA plots based on the pXRF data provided a good tool to discriminate between natural and mining-related dust sources and also between some specific mining-related sources. Altogether, this demonstrates that pXRF combined with multivariate statistics can be an adequate tool for fast cost-effective dust source characterisation.
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[1]  
Anderson NJ(2017)The Arctic in the twenty-first century: changing biogeochemical linkages across a paraglacial landscape of Greenland BioScience 67 118-133
[2]  
Saros JE(2019)Chemical and microphysical properties of wind-blown dust near an actively retreating glacier in Yukon, Canada Aerosol Science and Technology 54 2-20
[3]  
Bullard JE(2020)Geochemical signature of sources, recycling and weathering in the Last Glacial loess from the Rhône Valley (southeast France) and comparison with other European regions Aeolian Research 42 100561-34
[4]  
Cahoon SMP(2017)Provenance of titanomagnetite in ironsands on the west coast of the North Island, New Zealand Journal of Geochemical Exploration 178 23-445
[5]  
McGowan S(2018)Seasonal and decadal variability of dust observations in the Kangerlussuaq area, west Greenland Arctic, Antarctic, and Alpine Research 50 e1415854-73
[6]  
Bagshaw EA(2016)Forty-nine major and trace element concentrations measured in soil reference materials NIST SRM 2586, 2587, 2709a, 2710a and 2711a using ICP-MS and wavelength dispersive-XRF Geostandards and Geoanalytical Research 40 433-83
[7]  
Barry CD(2012)A review on the importance of metals and metalloids in atmospheric dust and aerosol from mining operations Science of the Total Environment 433 58-159
[8]  
Bindler R(2019)Metalliferous mine dust: Human health impacts and the potential determinants of disease in mining communities Current Pollution Reports 5 67-16
[9]  
Burpee BT(2014)Resolution of geochemical and lithostratigraphic complexity: a workflow for application of portable X-ray fluorescence to mineral exploration Geochemistry: Exploration, Environment, Analysis 14 149-343
[10]  
Carrivick JL(2018)The influence of spectral interferences on critical element determination with portable X-ray fluorescence (pXRF) Minerals 8 1-231