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dc.creatorAzeem M., Ali A., Arockiam Jeyasundar P.G.S., Bashir S., Hussain Q., Wahid F., Ali E.F., Abdelrahman H., Li R., Antoniadis V., Rinklebe J., Shaheen S.M., Li G., Zhang Z.en
dc.date.accessioned2023-01-31T07:34:57Z
dc.date.available2023-01-31T07:34:57Z
dc.date.issued2021
dc.identifier10.1016/j.chemosphere.2021.131016
dc.identifier.issn00456535
dc.identifier.urihttp://hdl.handle.net/11615/71025
dc.description.abstractBiochar prepared from various feedstock materials has been utilized in recent years as a potential stabilizing agent for heavy metals in smelter-contaminated soils. However, the effectiveness of animal bone-derived biochar and its potential for the stabilization of contaminants remains unclear. In the present study, sheep bone-derived biochar (SB) was prepared at low (500 °C; SBL) and high temperatures (800 °C; SBH) and amended a smelter-contaminated soil at 2, 5, and 10% (w/w). The effects of SB on soil properties, bioavailable Zn and Cd and their geochemical fractions, bacterial community composition and activity, and the response of plant attributes (pigments and antioxidant activity) were assessed. Results showed that the SBH added at 10% (SBH10) increased soil organic carbon, total nitrogen, and phosphorus, and also increased the oxidizable and residual Zn and Cd fractions at the expense of the bioavailable fractions. The SBH10 lowered the Zn and Cd contents in maize roots (by 57 and 60%) and shoot (by 42 and 61%), respectively, compared to unamended control. Additionally, SBH10 enhanced urease (98%) and phosphates (107%) activities, but reduced dehydrogenase (58%) and β-glucosidase (30%) activities. Regarding the effect of the pyrolysis temperature, SBH enhanced the activity of Acidobacteria, Bacteroidetes, Firmicutes, Nitrospirae, Verrucomicrobia, Chlorobi, and Microgenomates, but reduced Actinobacteria and Parcubacteria in comparison to SBL. However, only the SBL10 reduced the Proteobacteria community (by 9%). In conclusion, SB immobilized Zn and Cd in smelter-affected soils, enhanced the bacterial abundance and microbial function (urease, phosphates), and improved plant growth. However, validation of the results, obtained from the pot experiment, under field conditions is suggested. © 2021 Elsevier Ltden
dc.language.isoenen
dc.sourceChemosphereen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85107294435&doi=10.1016%2fj.chemosphere.2021.131016&partnerID=40&md5=103ffe0582f646bbc14acde37100f53b
dc.subjectAnimalsen
dc.subjectBoneen
dc.subjectContaminationen
dc.subjectHeavy metalsen
dc.subjectOrganic carbonen
dc.subjectPhosphatesen
dc.subjectSoil pollutionen
dc.subjectZincen
dc.subjectAnimal derived biomassen
dc.subjectBio charsen
dc.subjectBone charen
dc.subjectClean productionen
dc.subjectContaminated soilsen
dc.subjectEnvironmental applicationsen
dc.subjectMining soilen
dc.subjectPhytoavailabilityen
dc.subjectSoils qualitiesen
dc.subjectToxic metalsen
dc.subjectSoilsen
dc.subjectabundanceen
dc.subjectbacteriumen
dc.subjectbioavailabilityen
dc.subjectcadmiumen
dc.subjectcontaminated landen
dc.subjectgrowthen
dc.subjectmaizeen
dc.subjectmicrobial activityen
dc.subjectsoil nutrienten
dc.subjectsoil pollutionen
dc.subjectsoil qualityen
dc.subjectzincen
dc.subjectAcidobacteriaen
dc.subjectActinobacteriaen
dc.subjectBacteria (microorganisms)en
dc.subjectBacteroidetesen
dc.subjectChlorobien
dc.subjectFirmicutesen
dc.subjectNitrospiraeen
dc.subjectProteobacteriaen
dc.subjectVerrucomicrobiaen
dc.subjectbiocharen
dc.subjectcadmiumen
dc.subjectcarbonen
dc.subjectcharcoalen
dc.subjectzincen
dc.subjectanimalen
dc.subjectmaizeen
dc.subjectsheepen
dc.subjectsoilen
dc.subjectsoil pollutanten
dc.subjectAnimalsen
dc.subjectCadmiumen
dc.subjectCarbonen
dc.subjectCharcoalen
dc.subjectSheepen
dc.subjectSoilen
dc.subjectSoil Pollutantsen
dc.subjectZea maysen
dc.subjectZincen
dc.subjectElsevier Ltden
dc.titleEffects of sheep bone biochar on soil quality, maize growth, and fractionation and phytoavailability of Cd and Zn in a mining-contaminated soilen
dc.typejournalArticleen


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