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Composting improves biosorption of Pb2+ and Ni2+ by renewable lignocellulosic materials. Characteristics and mechanisms involved

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dc.contributor.author Anastopoulos, I en
dc.contributor.author Massas, I en
dc.contributor.author Ehaliotis, C en
dc.date.accessioned 2014-06-06T06:52:24Z
dc.date.available 2014-06-06T06:52:24Z
dc.date.issued 2013 en
dc.identifier.issn 13858947 en
dc.identifier.uri http://dx.doi.org/10.1016/j.cej.2013.07.028 en
dc.identifier.uri http://62.217.125.90/xmlui/handle/123456789/5990
dc.subject Biosorption en
dc.subject Composting en
dc.subject Isotherms en
dc.subject Ni en
dc.subject Olive tree pruning waste en
dc.subject Pb en
dc.subject.other Cation exchange capacities en
dc.subject.other Characteristics and mechanisms en
dc.subject.other Elevated temperature en
dc.subject.other Lignocellulosic material en
dc.subject.other Oxidative decomposition process en
dc.subject.other Pseudo second order kinetics en
dc.subject.other Sorption characteristics en
dc.subject.other Tree pruning en
dc.subject.other Biosorption en
dc.subject.other Composting en
dc.subject.other Forestry en
dc.subject.other Isotherms en
dc.subject.other Metal recovery en
dc.subject.other Metals en
dc.subject.other Nickel en
dc.subject.other Waste treatment en
dc.subject.other Lead en
dc.subject.other Composting en
dc.subject.other Effluent Treatment en
dc.subject.other Forestry en
dc.subject.other Isotherms en
dc.subject.other Lead en
dc.subject.other Metals en
dc.subject.other Nickel en
dc.title Composting improves biosorption of Pb2+ and Ni2+ by renewable lignocellulosic materials. Characteristics and mechanisms involved en
heal.type journalArticle en
heal.identifier.primary 10.1016/j.cej.2013.07.028 en
heal.publicationDate 2013 en
heal.abstract Composting may alter the sorption properties of organic materials deriving from renewable sources. The widely available olive tree pruning waste (OTPW) and its composted form (COTPW) were comparatively tested for Pb2+ and Ni2+ removal in single- and double-metal systems. Pb2+ biosorption was higher than that of Ni2+ and increased metal biosorption was observed up to pH 5.0. The process followed pseudo-second order kinetics and described by the Langmuir isotherm. Surface area, total pore volume and zeta potential values were increased following composting, while cation exchange capacity was over-doubled (from 37.6 to 87.4cmolckg-1) leading to higher Pb2+ and Ni2+ biosorption and improved biosorption at elevated temperatures. There was 144%, 78%, and 148% increase in the maximum sorption capacity for Pb2+ and 29%, 59%, and 108% for Ni2+ at 10, 25 and 60°C respectively. FTIR analysis indicated significant shifts in the chemical structure of OTPW as a result of composting, in line with oxidative decomposition processes. Among the desorption solutions tested, HNO3 and EDTA showed maximum recovery of both metals. Physisorption of both metals was greatly reduced by composting, leading to a biosorbent that retained Pb2+ and Ni2+ more efficiently. The suppressive effect of Ni2+ on Pb2+ sorption on OTPW throughout the whole range of Pb+2 concentrations, and the suppressive effect of Pb+2 on Ni+2 sorption at low Ni+2 concentrations were both alleviated when composted OTPW was used. Overall, OTPW proved to be a highly efficient biosorbent, especially for Pb2+, and composting resulted in multifunctional improvement of sorption characteristics. © 2013 Elsevier B.V. en
heal.journalName Chemical Engineering Journal en
dc.identifier.volume 231 en
dc.identifier.doi 10.1016/j.cej.2013.07.028 en
dc.identifier.spage 245 en
dc.identifier.epage 254 en


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