Immobilization of mercury in field soil and sediment using carboxymethyl cellulose stabilized iron sulfide nanoparticles
Иммобилизация ртути в полевой почве и донных отложениях с использованием наночастиц сульфида железа, стабилизированных карбоксиметилцеллюлозой
2012-06-28
SCID: 54.1/fj6z75za
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TCLP leachabilitycarboxymethyl cellulosein situ remediationiron sulfide nanoparticlesmercury immobilization
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Abstract (AI)
Mercury (Hg) is one of the most pervasive and bio-accumulative metals in the environment. Yet, effective in situ remediation technologies have been lacking. This study investigated the effectiveness of a class of soil-deliverable FeS nanoparticles for in situ immobilization of Hg in two field-contaminated soils from a New Jersey site and one sediment from an Alabama site. The nanoparticles were prepared using sodium carboxymethyl cellulose (CMC) as a stabilizer. Transmission electron microscopy measurements revealed a particle size of 34.3 ± 8.3 nm (standard deviation), whereas dynamic light scattering gave a hydrodynamic diameter of 222.5 ± 3.2 nm. Batch tests showed that at an FeS-to-Hg molar ratio of 28:1-118:1, the nanoparticles reduced water-leachable Hg by 79%-96% and the TCLP (toxicity characteristic leaching procedure) based leachability by 26%-96%. Column breakthrough tests indicated that the nanoparticles were deliverable in the sediment/soil columns under moderate injection pressure. However, once the external pressure was removed, the delivered nanoparticles remained virtually mobile under typical groundwater flow conditions. When the Hg-contaminated soil and sediment were treated with 52-95 pore volumes of a 500 mg l(-1) FeS nanoparticle suspension, water-leachable Hg was reduced by 90%-93% and TCLP-leachable Hg was reduced by 65%-91%. The results warrant further field demonstration of this promising in situ remediation technology.
Key Findings
1
At FeS-to-Hg molar ratios of 28:1–118:1, nanoparticles reduced water-leachable mercury by 79%–96% and TCLP leachability by 26%–96%.
2
Carboxymethyl cellulose-stabilized FeS nanoparticles were evaluated for in situ mercury immobilization in two contaminated soils and one sediment.
3
Column tests showed that the nanoparticles could be delivered under moderate injection pressure and remained mobile under typical groundwater flow after pressure removal.
4
The nanoparticles had a TEM-measured size of 34.3 ± 8.3 nm and a dynamic-light-scattering hydrodynamic diameter of 222.5 ± 3.2 nm.
5
Treatment with 52–95 pore volumes of 500 mg l⁻¹ FeS suspension reduced water-leachable mercury by 90%–93% and TCLP-leachable mercury by 65%–91%, supporting further field demonstration.
Research Object
Mercury-contaminated field soils and sediment
Research Subject
The effectiveness of carboxymethyl cellulose-stabilized iron sulfide nanoparticles for in situ immobilization and reduction of mercury leachability under soil and sediment treatment conditions
Publication Details
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2012-06-28
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