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Environmental Chemistry Environmental Chemistry Society
Environmental problems - Chemical approaches
EDITORIAL

A decade with Environmental Chemistry

Kevin Francesconi https://orcid.org/0000-0002-2536-0542
+ Author Affiliations
- Author Affiliations

Institute of Chemistry, University of Graz, Universitaetsplatz 1, 8010 Graz, Austria. Email: kevin.francesconi@uni-graz.at

Environmental Chemistry 17(5) 353-354 https://doi.org/10.1071/ENv17n5_ED
Published: 6 August 2020


References

da Costa JP, Paco A, Santos PSM, Duarte AC, Rocha-Santos T (2019). Microplastics in soils: assessment, analytics and risks. Environmental Chemistry 16, 18–30.
Microplastics in soils: assessment, analytics and risksCrossref | GoogleScholarGoogle Scholar |

Douglas TA, Loseto LL, Macdonald RW, Outridge P, Dommergue A, Poulain A, Amyot M, Barkay T, Berg T, Chetelat J, Constant P, Evans M, Ferrari C, Gantner N, Johnson MS, Kirk J, Kroer N, Larose C, Lean D, Nielsen TG, Poissant L, Rognerud S, Skov H, Sorensen S, Wang FY, Wilson S, Zdanowicz CM (2012). The fate of mercury in Arctic terrestrial and aquatic ecosystems, a review. Environmental Chemistry 9, 321–355.
The fate of mercury in Arctic terrestrial and aquatic ecosystems, a reviewCrossref | GoogleScholarGoogle Scholar |

Dris R, Gasperi J, Rocher V, Saad M, Renault N, Tassin B (2015). Microplastic contamination in an urban area: a case study in Greater Paris. Environmental Chemistry 12, 592–599.
Microplastic contamination in an urban area: a case study in Greater ParisCrossref | GoogleScholarGoogle Scholar |

Faure F, Demars C, Wieser O, Kunz M, de Alencastro LF (2015). Plastic pollution in Swiss surface waters: nature and concentrations, interaction with pollutants. Environmental Chemistry 12, 582–591.
Plastic pollution in Swiss surface waters: nature and concentrations, interaction with pollutantsCrossref | GoogleScholarGoogle Scholar |

Hladik ML, Kolpin DW (2016). First national-scale reconnaissance of neonicotinoid insecticides in streams across the USA. Environmental Chemistry 13, 12–20.
First national-scale reconnaissance of neonicotinoid insecticides in streams across the USACrossref | GoogleScholarGoogle Scholar |

Kleber M (2010). What is recalcitrant soil organic matter?. Environmental Chemistry 7, 320–332.
What is recalcitrant soil organic matter?Crossref | GoogleScholarGoogle Scholar |

Pugliese S, Jespersen MF, Pernov JB, Shenolikar J, Nygaard J, Nielsen OJ, Johnson MS (2020). Chemical analysis and origin of the smell of line-dried laundry. Environmental Chemistry 17, 355–363.
Chemical analysis and origin of the smell of line-dried laundryCrossref | GoogleScholarGoogle Scholar |

Rodriguez-Seijo A, Santos B, da Silva EF, Cachada A, Pereira R (2019). Low-density polyethylene microplastics as a source and carriers of agrochemicals to soil and earthworms. Environmental Chemistry 16, 8–17.
Low-density polyethylene microplastics as a source and carriers of agrochemicals to soil and earthwormsCrossref | GoogleScholarGoogle Scholar |

Tipping E, Lofts S, Sonke JE (2011). Humic Ion-Binding Model VII: a revised parameterisation of cation-binding by humic substances. Environmental Chemistry 8, 225–235.
Humic Ion-Binding Model VII: a revised parameterisation of cation-binding by humic substancesCrossref | GoogleScholarGoogle Scholar |

Williams J, Crutzen PJ (2013). Perspectives on our planet in the Anthropocene. Environmental Chemistry 10, 269–280.
Perspectives on our planet in the AnthropoceneCrossref | GoogleScholarGoogle Scholar |