Bioprecipitation of Metals and Metalloids

dc.contributor.authorŞahinkaya, Erkan
dc.contributor.authorUçar, Deniz
dc.contributor.authorKaksonen, Anna H.
dc.coverage.doi10.1007/978-3-319-58622-9
dc.date.accessioned2025-05-10T19:54:07Z
dc.date.issued2017
dc.departmentİMÜ, Fakülteler, Mühendislik ve Doğa Bilimleri Fakültesi, Biyomühendislik Bölümü
dc.description.abstractHeavy metals are toxic, carcinogenic and unlike organic contaminants are not biodegradable, and thus accumulate in organisms. Approximately 60% of the polluted areas in the world, suffer from the harmful effects of metals including Cd, Ni, Cu, Pb, Zn, Hg and Co. Mining, fertilizer, tanneries, paper, batteries and electroplating industries are the main sources of heavy metal containing waters. For example, in China, the annual amount of heavy metal containing electroplating industry wastewater has exceeded 4 billion tons. Up to 1000 mg/kg heavy metal concentration in sediments has been reported due to repeated discharges. We reviewed the sources of heavy metal containing water and metal precipitation techniques including metal sulfide, hydroxide, ferrihydrite, geothite, jarosite as well as schwertmannite precipitation. Metal sulfide precipitation relies on the biological generation of H2S and near complete metal removal is possible with both organic (i.e. ethanol) and inorganic (i. e. hydrogen) electron donors. The utilization of soluble electron donors provides high rate and dense metal precipitates with metal recovery of over 80% (usually 100%). Additionally, metals can be recovered separately as various metal sulfides by adjusting pH. Biological oxidation/reduction processes facilitate the formation of insoluble metal precipitates for uranium (U6+ to U4+); chromium (Cr6+ to Cr3+) or iron (Fe2+ to Fe3+). The major points extracted from the study are: (1) metal sulfide precipitation is fast, results in low residual metal concentrations and allows for selective recovery of various metals with a wide variety of different reactor configurations, (2) high rate biological metal recovery is possible with cultures which use metals as electron acceptors which eliminates the drawbacks such as chemical costs and huge sludge volume production in chemical reduction, (3) animal manure, leaf mulch, sawdust, wood chips, sewage sludge, cellulose could be used in passive treatment systems and therefore operational costs could be optimized, (4) some heavy metals can be precipitated through biological oxidation (i.e. Fe2+ to Fe3+) and (5) possible iron precipitates include hematite (Fe2O3); geothite (FeOOH); ferric hydroxide Fe(OH)(3); jarosite Fe-3(SO4)(2)(OH)(6); schwertmannite Fe16O16(SO4)(2)(OH)12 center dot n(H2O) and scorodite (FeAsO4 center dot 2H(2)O).
dc.identifier.doi10.1007/978-3-319-58622-9_7
dc.identifier.endpage231
dc.identifier.isbn978-3-319-58622-9
dc.identifier.isbn978-3-319-58621-2
dc.identifier.issn2213-7114
dc.identifier.issn2213-7122
dc.identifier.scopusqualityN/A
dc.identifier.startpage199
dc.identifier.urihttps://doi.org/10.1007/978-3-319-58622-9_7
dc.identifier.urihttps://hdl.handle.net/20.500.14730/12949
dc.identifier.volume8
dc.identifier.wosWOS:000429190300008
dc.identifier.wosqualityN/A
dc.indekslendigikaynakWeb of Science
dc.language.isoen
dc.publisherSpringer
dc.relation.ispartofSustainable Heavy Metal Remediation: Vol 1: Principles and Processes
dc.relation.publicationcategoryKitap Bölümü - Uluslararası
dc.rightsinfo:eu-repo/semantics/closedAccess
dc.snmzKA_WOS_20250302
dc.subjectAcid mine drainage
dc.subjectBiooxidation
dc.subjectBioprecpitation
dc.subjectBioreduction
dc.subjectHeavy metal precipitation
dc.subjectIron oxidation
dc.subjectMetal precipitation
dc.subjectMetal recovery
dc.subjectMetal removal
dc.subjectOxidative precipitation
dc.subjectReductive precipitation
dc.subjectSulfate reduction
dc.titleBioprecipitation of Metals and Metalloids
dc.typeBook Part

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