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Chemical Engineering TransactionsVolume 28, 2012, Pages 139-144

Electrokinetic enhanced transport of zero valent iron nanoparticles for chromium(VI) reduction in soils(Conference Paper)

  • aDepartment of Civil and Environmental Engineering, Fritz Engineering Laboratory, Lehigh University, 13 E. Packer Avenue, Bethlehem, PA 18015-4729, United States
  • bCENSE, Departamento de Ciências e Engenharia Do Ambiente, Universidade Nova de Lisboa, 2829-516 Caparica, Portugal
  • cCERNAS, Departamento de Ambiente, Escola Superior Agrária de Coimbra, Bencanta, 3040-316 Coimbra, Portugal

Abstract

Zero valent iron nanoparticles (nZVI) are a promising technology that could provide cost-effective solutions to soil and groundwater remediation. However, transport of nZVI is normally limited by their aggregation and settling, and with mobility being normally less than a few meters.The main research objective of this study is to find out if coupling electrokinetics and reactive iron nanoparticles can be an effective method for treating chromium contaminated clay soils. Direct current was used to enhance poly(acrylic acid), sodium salt (PAA) coated iron nanoparticles (PAA-nZVI) mobility in Cr(VI) spiked kaolin.A commercially available electrophoretic cell was modified for these experiments and equipped with internal auxiliary electrodes that allow to measure the redox potential directly in the clay. A constant potential of 5.0 V wasapplied across the test bed. Experimental results show that electrokinetics can enhance the delivery of nanoscale iron particles for the reduction of hexavalent chromium to the less toxic trivalent chromium. Direct current enhanced nZVI transport up to 74 % when compared with diffusion, maximum value found when comparing iron concentrations ratios. Activation of nZVI was also observed with a decrease in the redox potential of 531 mV, in average, after the injection point. Copyright © 2012, AIDIC Servizi S.r.l.

Indexed keywords

Engineering controlled terms:ChromiumChromium compoundsClayCost effectivenessElectrodynamicsElectrohydrodynamicsElectromagnetic fieldsElectroosmosisElectrophoretic mobilityGroundwaterIron researchNanoparticlesRedox reactionsRemediationSoil testingSoils
Engineering uncontrolled termsAuxiliary electrodesCost-effective solutionsEnhanced transportsNanoscale iron particlesPoly(acrylic acid )Research objectivesSoil and groundwater remediationZero-valent iron nanoparticles
Engineering main heading:Iron
  • ISSN: 22839216
  • Source Type: Journal
  • Original language: English
  • DOI: 10.3303/CET1228024
  • Document Type: Conference Paper
  • Publisher: Italian Association of Chemical Engineering - AIDIC

  Gomes, H.I.; Department of Civil and Environmental Engineering, Fritz Engineering Laboratory, Lehigh University, 13 E. Packer Avenue, United States;
© Copyright 2018 Elsevier B.V., All rights reserved.

Cited by 9 documents

Ottosen, L.M. , Larsen, T.H. , Jensen, P.E.
Electrokinetics applied in remediation of subsurface soil contaminated with chlorinated ethenes – A review
(2019) Chemosphere
Roestorff, M.M. , Chirwa, E.M.N.
Bacterial Cr(VI) reduction with internal carbon recirculation using freshwater algae as primary producers
(2018) Chemical Engineering Transactions
Roestorff, M.M. , Chirwa, E.M.N.
Comparison of the performance of Chlorococcum ellipsoideum and Tetradesmus obliquus as a carbon source for reduction of Cr(VI) with bacteria
(2018) Chemical Engineering Transactions
View details of all 9 citations
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