Matches in SemOpenAlex for { <https://semopenalex.org/work/W3119614900> ?p ?o ?g. }
- W3119614900 endingPage "120034" @default.
- W3119614900 startingPage "120034" @default.
- W3119614900 abstract "Jarosite (KFe3(SO4)2(OH)6) is a common secondary reaction product of iron sulfide oxidation and can pose a considerable risk to soil and water quality. The overarching objective of this study was to explore the possibility of employing passivation-based treatments to mitigate the risks associated with jarosite-rich materials by investigating the alteration of pedogenic jarosite to a relatively benign, sparingly-soluble mineral such as goethite or strengite. Samples of jarositic phytotubules (from an acid sulfate soil with sulfuric material) were treated with: (i) alkaline solutions with a view to produce ferric (oxyhydr)oxide; (ii) phosphate solutions with a view to produce ferric phosphate; and (iii) alkaline solutions, followed by phosphate solutions, with a view to produce ferric phosphate. These treatments were conducted at both ambient (25°C) and elevated temperatures (80°C) to explore the effects of temperature on the extent of jarosite alteration. Under alkaline conditions, jarosite readily decomposed to yield poorly-crystalline ferric (oxyhydr)oxides (e.g. two-line ferrihydrite), regardless of temperature. These ferric (oxyhydr)oxides readily reacted with phosphoric acid to yield ferric phosphate; and with monoammonium phosphate (MAP) to yield spheniscidite ((NH4,K)(Fe,Al)2(PO4)2(OH).2H2O). Jarosite reacted with phosphoric acid to produce strengite or phosphosiderite (depending on the reaction temperature) and, to a lesser extent, gengenbachite (KFe3(HPO4)4(H2PO4)2.6H2O). Similarly, jarosite reacted with MAP to produce hydrogen ammonium ferric phosphate (H2(NH4)Fe(PO4)2). The direct alteration of jarosite to ferric phosphate appears to be very limited under ambient conditions. However, this study predominantly focuses on changes to the bulk chemical composition of jarosite. Consequently, further investigation (e.g. SEM analysis) is recommended to explore subtle changes in surface chemistry and the related effects on jarosite reactivity. Column perfusion experiments were also conducted to study the release of key elements during the dissolution of NaOH- and MAP-treated jarosite. The results suggest that these treatments do not considerably lower the risks to soil and water quality posed by jarosite dissolution. The practicality of the treatments is discussed, including the potential negative side effects. Further investigation is required to determine if these, or alternative, passivation treatments could be employed in the field to effectively mitigate the environmental risk associated with jarosite." @default.
- W3119614900 created "2021-01-18" @default.
- W3119614900 creator A5010625225 @default.
- W3119614900 creator A5011320416 @default.
- W3119614900 creator A5027243804 @default.
- W3119614900 creator A5067502616 @default.
- W3119614900 date "2021-02-01" @default.
- W3119614900 modified "2023-10-17" @default.
- W3119614900 title "Exploring passivation-based treatments for jarosite from an acid sulfate soil" @default.
- W3119614900 cites W1970795791 @default.
- W3119614900 cites W1974613339 @default.
- W3119614900 cites W1975452217 @default.
- W3119614900 cites W1976944913 @default.
- W3119614900 cites W1977438891 @default.
- W3119614900 cites W1982394387 @default.
- W3119614900 cites W1999618774 @default.
- W3119614900 cites W2001083995 @default.
- W3119614900 cites W2006367555 @default.
- W3119614900 cites W2015269162 @default.
- W3119614900 cites W2035629531 @default.
- W3119614900 cites W2036123010 @default.
- W3119614900 cites W2048151443 @default.
- W3119614900 cites W2064305160 @default.
- W3119614900 cites W2071477827 @default.
- W3119614900 cites W2084983188 @default.
- W3119614900 cites W2086711218 @default.
- W3119614900 cites W2092843900 @default.
- W3119614900 cites W2105184914 @default.
- W3119614900 cites W2130008472 @default.
- W3119614900 cites W2329645323 @default.
- W3119614900 cites W2509750664 @default.
- W3119614900 cites W2598109313 @default.
- W3119614900 cites W2741140706 @default.
- W3119614900 cites W2883359000 @default.
- W3119614900 cites W2954806025 @default.
- W3119614900 cites W3015014706 @default.
- W3119614900 cites W324070680 @default.
- W3119614900 cites W1970987982 @default.
- W3119614900 doi "https://doi.org/10.1016/j.chemgeo.2020.120034" @default.
- W3119614900 hasPublicationYear "2021" @default.
- W3119614900 type Work @default.
- W3119614900 sameAs 3119614900 @default.
- W3119614900 citedByCount "4" @default.
- W3119614900 countsByYear W31196149002021 @default.
- W3119614900 countsByYear W31196149002022 @default.
- W3119614900 countsByYear W31196149002023 @default.
- W3119614900 crossrefType "journal-article" @default.
- W3119614900 hasAuthorship W3119614900A5010625225 @default.
- W3119614900 hasAuthorship W3119614900A5011320416 @default.
- W3119614900 hasAuthorship W3119614900A5027243804 @default.
- W3119614900 hasAuthorship W3119614900A5067502616 @default.
- W3119614900 hasConcept C13965031 @default.
- W3119614900 hasConcept C150394285 @default.
- W3119614900 hasConcept C178790620 @default.
- W3119614900 hasConcept C179104552 @default.
- W3119614900 hasConcept C185592680 @default.
- W3119614900 hasConcept C2775929177 @default.
- W3119614900 hasConcept C2776622989 @default.
- W3119614900 hasConcept C2777132085 @default.
- W3119614900 hasConcept C2777787761 @default.
- W3119614900 hasConcept C2778199549 @default.
- W3119614900 hasConcept C2778343803 @default.
- W3119614900 hasConcept C2778620993 @default.
- W3119614900 hasConcept C2780191927 @default.
- W3119614900 hasConcept C2780534640 @default.
- W3119614900 hasConcept C2780596425 @default.
- W3119614900 hasConceptScore W3119614900C13965031 @default.
- W3119614900 hasConceptScore W3119614900C150394285 @default.
- W3119614900 hasConceptScore W3119614900C178790620 @default.
- W3119614900 hasConceptScore W3119614900C179104552 @default.
- W3119614900 hasConceptScore W3119614900C185592680 @default.
- W3119614900 hasConceptScore W3119614900C2775929177 @default.
- W3119614900 hasConceptScore W3119614900C2776622989 @default.
- W3119614900 hasConceptScore W3119614900C2777132085 @default.
- W3119614900 hasConceptScore W3119614900C2777787761 @default.
- W3119614900 hasConceptScore W3119614900C2778199549 @default.
- W3119614900 hasConceptScore W3119614900C2778343803 @default.
- W3119614900 hasConceptScore W3119614900C2778620993 @default.
- W3119614900 hasConceptScore W3119614900C2780191927 @default.
- W3119614900 hasConceptScore W3119614900C2780534640 @default.
- W3119614900 hasConceptScore W3119614900C2780596425 @default.
- W3119614900 hasFunder F4320334704 @default.
- W3119614900 hasLocation W31196149001 @default.
- W3119614900 hasOpenAccess W3119614900 @default.
- W3119614900 hasPrimaryLocation W31196149001 @default.
- W3119614900 hasRelatedWork W1976902348 @default.
- W3119614900 hasRelatedWork W1998882371 @default.
- W3119614900 hasRelatedWork W2043941598 @default.
- W3119614900 hasRelatedWork W2074686841 @default.
- W3119614900 hasRelatedWork W2075451244 @default.
- W3119614900 hasRelatedWork W2078616161 @default.
- W3119614900 hasRelatedWork W3009463592 @default.
- W3119614900 hasRelatedWork W3096145845 @default.
- W3119614900 hasRelatedWork W3119614900 @default.
- W3119614900 hasRelatedWork W4205262956 @default.
- W3119614900 hasVolume "561" @default.
- W3119614900 isParatext "false" @default.
- W3119614900 isRetracted "false" @default.