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Stabilization of Fe−Pd Nanoparticles with Sodium Carboxymethyl Cellulose for Enhanced Transport and Dechlorination of Trichloroethylene in Soil and Groundwater

Industrial & Engineering Chemistry Research · 2006 · Vol. 46(1) · pp. 29–34
Feng HeDongye ZhaoJuncheng LiuChristopher B. Roberts

Abstract

This study reports a new strategy for stabilizing palladized iron (Fe−Pd) nanoparticles with sodium carboxymethyl cellulose (CMC) as a stabilizer. Compared to nonstabilized Fe−Pd particles, the CMC-stabilized nanoparticles displayed markedly improved stability against aggregation, chemical reactivity, and soil transport. Transmission electron microscopy (TEM) and dynamic light scattering (DLS) analyses indicated that the CMC-stabilized nanoparticles with a diameter <17.2 nm are highly dispersed in water. Fourier transform infrared (FTIR) spectroscopy results suggested that CMC molecules were adsorbed to iron nanoparticles primarily through the carboxylate groups through monodentate complexation. In addition, −OH groups in CMC were also involved in interactions with iron particles. Batch dechlorination tests demonstrated that the CMC-stabilized nanoparticles degraded trichloroethene (TCE) 17 times faster than their nonstabilized counterparts based on the initial pseudo-first-order rate constant. Last, column tests showed that the stabilized nanoparticles can be readily transported in a loamy-sand soil and then eluted completely with three bed volumes of deionized (DI) water.

Environmental remediation with nanomaterialsNanomaterials for catalytic reactionsAdvanced oxidation water treatmentCarboxymethyl celluloseChemistryNanoparticleFourier transform infrared spectroscopyDynamic light scatteringCarboxylateAdsorptionCelluloseInorganic chemistryChemical engineering

Funding

  • U.S. Environmental Protection Agency
  • Alabama Water Resources Research Institute
Citations
660
FWCI
15.17
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40
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99%
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References
Synthesizing Nanoscale Iron Particles for Rapid and Complete Dechlorination of TCE and PCBs
Environmental Science & Technology · 1997 · 1,582 citations
Size-Controlled Synthesis of Magnetite Nanoparticles
Journal of the American Chemical Society · 2002 · 2,797 citations
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