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Environmental problems - Chemical approaches
RESEARCH ARTICLE

EEM-PARAFAC-SOM for assessing variation in the quality of dissolved organic matter: simultaneous detection of differences by source and season

Chad W. Cuss https://orcid.org/0000-0002-4351-8702 A , Mark W. Donner A , Tommy Noernberg A , Rick Pelletier A and William Shotyk A B
+ Author Affiliations
- Author Affiliations

A Department of Renewable Resources, University of Alberta, Edmonton, AB T6G 2H1, Canada.

B Corresponding author. Email: shotyk@ualberta.ca

Environmental Chemistry 16(5) 360-374 https://doi.org/10.1071/EN19016
Submitted: 16 January 2019  Accepted: 1 April 2019   Published: 7 May 2019

Environmental context. Dissolved organic matter (DOM) is a highly diverse mixture of interacting compounds, which plays a key role in environmental processes in aquatic systems. The quality and functionality of DOM are measured using fluorescence spectroscopy, but established data analysis assumes linear behaviour, limiting the effectiveness of characterisation. We apply self-organising maps to fluorescence composition to improve the assessment of DOM quality and behaviour by visualising the interdependent nature of its components.

Abstract. Self-organising maps (SOMs) were used to sort the excitation–emission matrices (EEMs) of dissolved organic matter (DOM) based on their multivariate ‘fluorescence composition’ (i.e. each parallel factor analysis (PARAFAC) component loading, viz. ‘Fmax’ value was expressed as a proportion of all Fmax values in each EEM). This sorting provided a simultaneous organisation of DOM according to differences in quality along a 125-km stretch of a large boreal river, corresponding with both source and season. The information provided by the SOM-based spatial organisation of samples was also used to assess the likelihood of PARAFAC model overfitting. Changes in fluorescence composition caused by changing salinity were also assessed for multiple sources. Seasonal and source-based differences were readily apparent for the main stem of the river and tributaries, and source-based differences were apparent in both fresh and saline groundwaters. Proportions of humic-like components were positively correlated with the amounts of bog, fen and swamp in tributary watersheds. Proportions of six PARAFAC components were negatively correlated with the proportions of all wetland types, and positively correlated with the proportions of open water and other land cover. Ancient saline groundwaters contained >50 % protein-like DOM. There was no change in DOM quality from upstream to downstream in August or October. Increasing salinity was associated with additional protein-like fluorescence in all sources, but source-based differences were also apparent. The application of SOM to fluorescence composition is highly recommended for assessing and visualising transformations and differences in DOM quality, and relating them to associated properties.

Additional keywords: Athabasca bituminous sands, boreal zone, climate change, compositional data, excitation–emission matrix, fluorescence, large river, non-linear relationships, parallel factor analysis, self-organising maps, trace elements, wetlands.


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