Literature DB >> 17539544

Hydrous ferric oxide incorporated diatomite for remediation of arsenic contaminated groundwater.

Min Jang1, Soo-hong Min, Jae Kwang Park, Eric J Tlachac.   

Abstract

Two reactive media [zerovalent iron (ZVI, Fisher Fe0) and amorphous hydrous ferric oxide (HFO)-incorporated porous, naturally occurring aluminum silicate diatomite [designated as Fe (25%)-diatomite]], were tested for batch kinetic, pH-controlled differential column batch reactors (DCBRs), in small- and large-scale column tests (about 50 and 900 mL of bed volume) with groundwater from a hazardous waste site containing high concentrations of arsenic (both organic and inorganic species), as well as other toxic or carcinogenic volatile and semivolatile organic compounds (VOC/SVOCs). Granular activated carbon (GAC) was also included as a reactive media since a permeable reactive barrier (PRB) at the subject site would need to address the hazardous VOC/SVOC contamination as well as arsenic. The groundwater contained an extremely high arsenic concentration (341 mg L(-1)) and the results of ion chromatography and inductively coupled plasma mass spectrometry (IC-ICP-MS) analysis showed that the dominant arsenic species were arsenite (45.1%) and monomethyl arsenic acid (MMAA, 22.7%), while dimethyl arsenic acid (DMAA) and arsenate were only 2.4 and 1.3%, respectively. Based on these proportions of arsenic species and the initial As-to-Fe molar ratio (0.15 molAs mole(-1)), batch kinetic tests revealed that the sorption density (0.076 molAs molFe(-1)) for Fe (25%)-diatomite seems to be less than the expected value (0.086 molAs molFe(-1) calculated from the sorption density data reported by Lafferty and Loeppert (Environ. Sci. Technol. 2005, 39, 2120-2127), implying that natural organic matters (NOMs) might play a significant role in reducing arsenic removal efficiency. The results of pH-controlled DCBR tests using different synthetic species of arsenic solution showed that the humic acid inhibited the MMAA removal of Fe (25%)-diatomite more than arsenite. The mixed system of GAC and Fe (25%)-diatomite increased the arsenic sorption speed to more than that of either individual media alone. This increase might be deduced by the fact that the addition of GAC could enhance arsenic removal performance of Fe (25%)-diatomite through removing comparably high portions of NOMs. Small- and large-scale column studies demonstrated that the empty bed contact time (EBCT) significantly affected sorpton capacities at breakthrough (C = 0.5 C0) forthe Fe0/sand (50/50, w/w) mixture, but notfor GAC preloaded Fe (25%)-diatomite. In the large-scale column tests with actual groundwater conditions, the GAC preloaded Fe (25%)-diatomite effectively reduced arsenic to below 50 microg L(-1) for 44 days; additionally, most species of VOC/SVOCs were also simultaneously attenuated to levels below detection.

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Year:  2007        PMID: 17539544     DOI: 10.1021/es062359e

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  4 in total

1.  Moisture content-affected electrokinetic remediation of Cr(VI)-contaminated clay by a hydrocalumite barrier.

Authors:  Yunfeng Xu; Xiangjian Xu; Hetian Hou; Jia Zhang; Dayi Zhang; Guangren Qian
Journal:  Environ Sci Pollut Res Int       Date:  2015-12-04       Impact factor: 4.223

2.  Preparation of PVDF/FMBO composite electrospun nanofiber for effective arsenate removal from water.

Authors:  Parisa Aliahmadipoor; Dadkhoda Ghazanfari; Rasoul Jamshidi Gohari; Mohammad Reza Akhgar
Journal:  RSC Adv       Date:  2020-06-30       Impact factor: 4.036

Review 3.  Photonic Nano-/Microstructured Diatom Based Biosilica in Metal Modification and Removal-A Review.

Authors:  Piya Roychoudhury; Rahul Bose; Przemysław Dąbek; Andrzej Witkowski
Journal:  Materials (Basel)       Date:  2022-09-23       Impact factor: 3.748

4.  Granulated Bog Iron Ores as Sorbents in Passive (Bio)Remediation Systems for Arsenic Removal.

Authors:  Klaudia Debiec; Grzegorz Rzepa; Tomasz Bajda; Witold Uhrynowski; Aleksandra Sklodowska; Jan Krzysztoforski; Lukasz Drewniak
Journal:  Front Chem       Date:  2018-03-16       Impact factor: 5.221

  4 in total

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