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Methodsx|January 10, 2019
Indirect DNA extraction method suitable for acidic soil with high clay contentEva Högfors-Rönnholm, Stephan Christel, Sten Engblom, et al.The Science of the Total Environment|October 2, 2022
Iron‑sulfur geochemistry and acidity retention in hydrologically active macropores of boreal acid sulfate soils: Effects of mitigation suspensions of fine-grained calcite and peatChangxun Yu, Eva Högfors-Rönnholm, Pekka Stén, et al.The Science of the Total Environment|May 2, 2015
Impact of mitigation strategies on acid sulfate soil chemistry and microbial communityXiaofen Wu, Pekka Sten, Sten Engblom, et al.FEMS Microbiology Ecology|February 2, 2013
Microbial community potentially responsible for acid and metal release from an Ostrobothnian acid sulfate soilXiaofen Wu, Zhen Lim Wong, Pekka Sten, et al.The Science of the Total Environment|November 25, 2021
Dredging and deposition of metal sulfide rich river sediments results in rapid conversion to acid sulfate soil materialsAnders Johnson, Eva Högfors-Rönnholm, Sten Engblom, et al.The Science of the Total Environment|December 30, 2017
Chemical and microbiological evaluation of novel chemical treatment methods for acid sulfate soilsEva Högfors-Rönnholm, Stephan Christel, Krister Dalhem, et al.Environmental Science & Technology|May 14, 2024
Storage and Distribution of Organic Carbon and Nutrients in Acidic Soils Developed on Sulfidic Sediments: The Roles of Reactive Iron and MacroporesChangxun Yu, Nguyen Tan Luong, Mohammed E Hefni, et al.Scientific Data|October 18, 2019
Metagenomes and metatranscriptomes from boreal potential and actual acid sulfate soil materialsEva Högfors-Rönnholm, Margarita Lopez-Fernandez, Stephan Christel, et al.Pageof 1