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LIBRIS Formathandbok  (Information om MARC21)
FältnamnIndikatorerMetadata
00004253naa a2200505 4500
001oai:DiVA.org:ltu-72432
003SwePub
008190103s2019 | |||||||||||000 ||eng|
024a https://urn.kb.se/resolve?urn=urn:nbn:se:ltu:diva-724322 URI
024a https://doi.org/10.1016/j.apgeochem.2018.12.0032 DOI
040 a (SwePub)ltu
041 a engb eng
042 9 SwePub
072 7a ref2 swepub-contenttype
072 7a art2 swepub-publicationtype
100a Kumpiene, Jurateu Luleå tekniska universitet,Geovetenskap och miljöteknik4 aut0 (Swepub:ltu)juku
2451 0a In situ chemical stabilization of trace element-contaminated soil :b Field demonstrations and barriers to transition from laboratory to the field : A review
264 1b Elsevier,c 2019
338 a print2 rdacarrier
500 a Validerad;2019;Nivå 2;2019-01-04 (svasva)
520 a The chemical stabilization, or immobilization, of trace elements (metals and metalloids; TE) in contaminated soil has been studied for decades. A vast number of scientific publications are available on the method performance in laboratory settings, reporting that the application of various soil amendments to contaminated soil reduces TE mobility, bioavailability and toxicity. The most commonly used soil amendments include organic matter, iron oxides, phosphates, ashes, and lately biochar, alone or in combination with each other and/or lime. Most of the implemented field studies show a certain degree of improvement in soil and/or vegetation status following amendment. Regardless the positive performance of the technique in the laboratory, field validations and demonstrations remain scarce. The establishment of a field experiment often involves permits from authorities and agreements with site owners, both of which are considerably more time-consuming than laboratory tests. Due to conservative institutional structures, public authorities have been slow to adopt alternative remediation technologies, especially when the total TE concentration in soil remains the same and all of the associated risks are not yet convincingly described. For this reason, researchers should also focus on enhancing public knowledge of alternative remediation techniques so that future projects which aim to demonstrate the effectiveness of in situ immobilization techniques under natural conditions will be supported.
650 7a TEKNIK OCH TEKNOLOGIERx Naturresursteknikx Annan naturresursteknik0 (SwePub)207992 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Environmental Engineeringx Other Environmental Engineering0 (SwePub)207992 hsv//eng
650 7a SAMHÄLLSVETENSKAPx Ekonomi och näringslivx Nationalekonomi0 (SwePub)502012 hsv//swe
650 7a SOCIAL SCIENCESx Economics and Businessx Economics0 (SwePub)502012 hsv//eng
653 a Soil remediation
653 a Immobilization
653 a Soil amendments
653 a Leaching
653 a Bioavailability
653 a Avfallsteknik
653 a Waste Science and Technology
653 a Economics
653 a Nationalekonomi
700a Antelo, Juanu Technological Research Institute, University of Santiago de Compostela, Spain4 aut
700a Brännvall, Evelinau Luleå tekniska universitet,Geovetenskap och miljöteknik4 aut0 (Swepub:ltu)evebra
700a Carabante, Ivanu Luleå tekniska universitet,Geovetenskap och miljöteknik4 aut0 (Swepub:ltu)ivacar
700a Ek, Kristinau Luleå tekniska universitet,Samhällsvetenskap4 aut0 (Swepub:ltu)krise
700a Komárek, Michaelu Department of Environmental Geosciences, Faculty of Environmental Sciences, Czech University of Life Sciences Prague, Czech Republic4 aut
700a Söderberg, Charlottau Luleå tekniska universitet,Samhällsvetenskap4 aut0 (Swepub:ltu)chasod
700a Wårell, Lindau Luleå tekniska universitet,Samhällsvetenskap4 aut0 (Swepub:ltu)lindaw
710a Luleå tekniska universitetb Geovetenskap och miljöteknik4 org
773t Applied Geochemistryd : Elsevierg 100, s. 335-351q 100<335-351x 0883-2927x 1872-9134
8564 8u https://urn.kb.se/resolve?urn=urn:nbn:se:ltu:diva-72432
8564 8u https://doi.org/10.1016/j.apgeochem.2018.12.003

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