Hostname: page-component-77c89778f8-sh8wx Total loading time: 0 Render date: 2024-07-17T13:06:10.178Z Has data issue: false hasContentIssue false

Nitrate Reduction by Redox-Activated, Polydiallyldimethylammonium-Exchanged Ferruginous Smectite

Published online by Cambridge University Press:  01 January 2024

Kai Su
Affiliation:
University of Illinois, Urbana, Illinois, USA Southwest Jiaotong University, Chengdu, China
Adi Radian
Affiliation:
Hebrew University of Jerusalem, Rehovot, Israel
Yael Mishael
Affiliation:
Hebrew University of Jerusalem, Rehovot, Israel
Lizhong Yang
Affiliation:
Southwest Jiaotong University, Chengdu, China
Joseph W. Stucki*
Affiliation:
University of Illinois, Urbana, Illinois, USA
*
*E-mail address of corresponding author: jstucki@illinois.edu

Abstract

Nitrate is linked to chronic human illness and to a variety of environmental problems, and continues to be a contaminant of concern in soils and natural waters. Improved methods for nitrate abatement, thus, are still needed. The purpose of this study was to assess the potential for redox-modified, iron-bearing clay minerals to act as nitrate decontamination agents in natural environments. The model clay mineral tested was ferruginous smectite (sample SWa-1) exchanged with either sodium (Na+) or polydiallyldimethylammonium chloride (poly-DADMAC). Structural iron (Fe) in SWa-1 was in either the oxidized or reduced state. Little nitrate uptake was observed in the Na+-SWa-1, which was attributed to coulombic repulsion between the basal surfaces of the smectite and the nitrate anion. The addition of the DADMAC to the SWa-1 reversed the electrostatic charge manifested at the smectite surface from negative to positive, as measured by the zeta (ζ) potential. The positively charged poly-DADMAC-SWa-1 yielded high nitrate uptake due to coulombic attraction in both the oxidized and reduced states of the Fe in the SWa-1. The presence of reduced structural Fe(II) in the positively charged poly-DADMAC-SWa-1 enabled a chemical reduction reaction with the nitrate to produce nitrite. The amounts of nitrite found in solution, however, failed to account for all of the Fe(II) oxidized, so other N reduction products may also have formed or perhaps nitrite was also present in the adsorbed phase. The effects of other complexities, such as polymer configuration at the surface, also need further investigation. The results do clearly establish abiotic nitrate reduction to nitrite and possibly other reduction products. The combination of bacterial activity in soils and sediments, which is known to reduce structural Fe in smectites, and the abundance of organic cations in soil organic matter creates an environment where reversed-charge smectite could exist in nature. This represents a potentially effective system for mitigating harmful effects of nitrate in soils, sediments, groundwater, and surface water.

Type
Article
Copyright
Copyright © Clay Minerals Society 2012

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Alowitz, M.J. and Scherer, M.M., 2002 Kinetics of nitrate, nitrite, and Cr(VI) reduction by iron metal Environmental Science & Technology 36 299306.CrossRefGoogle ScholarPubMed
Baggs, E.M., 2011 Soil microbial sources of nitrous oxide: Recent advances in knowledge, emerging challenges and future direction Current Opinion in Environmental Sustainability 3 321327.CrossRefGoogle Scholar
Bleiman, N. and Mishael, Y.G., 2010 Selenium removal from drinking water by adsorption to chitosan-clay composites and oxides: Batch and columns tests Journal of Hazardous Materials 183 590595.CrossRefGoogle ScholarPubMed
Breen, C., 1999 The characterisation and use of polycation-exchanged bentonites Applied Clay Science 15 187219.CrossRefGoogle Scholar
Breen, C. and Watson, R., 1998 Polycation-exchanged clays as sorbents for organic pollutants: Influence of layer charge on pollutant sorption capacity Journal of Colloid and Interface Science 208 422429.CrossRefGoogle ScholarPubMed
Burgin, A.J. and Hamilton, S.K., 2007 Have we overemphasized the role of denitrification in aquatic ecosystems? A review of nitrate removal pathways Frontiers in Ecology and the Environment 5 8996.CrossRefGoogle Scholar
Camargo, J.A. and Alonso, A., 2006 Ecological and toxicological effects of inorganic nitrogen pollution in aquatic ecosystems: A global assessment Environment International 32 831849.CrossRefGoogle ScholarPubMed
Cervini-Silva, J. Wu, J. Stucki, J.W. and Larson, R.A., 2000 Adsorption kinetics of pentachloroethane in iron-bearing smectites Clays and Clay Minerals 48 132138.CrossRefGoogle Scholar
Chang, M.Y. and Juang, R.S., 2004 Adsorption of tannic acid, humic acid, and dyes from water using the composite of chitosan and activated clay Journal of Colloid and Interface Science 278 1825.CrossRefGoogle ScholarPubMed
Chen, S.Z. Low, P.F. and Roth, C.B., 1987 Relation between potassium fixation and the oxidation-state of octahedral iron Soil Science Society of America Journal 51 8286.CrossRefGoogle Scholar
Churchman, G.J., 2002 Formation of complexes between bentonite and different cationic polyelectrolytes and their use as sorbents for non-ionic and anionic pollutants Applied Clay Science 21 177189.CrossRefGoogle Scholar
Churchman, G.J., 2002 Formation of complexes between bentonite and different cationic polyelectrolytes and their use as sorbents for non-ionic and anionic pollutants Applied Clay Science 21 177189.CrossRefGoogle Scholar
Claesson, P.M. Poptoshev, E. Blomberg, E. and Dedinaite, A., 2005 Polyelectrolyte-mediated surface interactions Advances in Colloid and Interface Science 114-115 173187.CrossRefGoogle ScholarPubMed
Colthup, N.B., 1950 Spectra-structure correlation in the infrared region Journal of the Optical Society of America 40 397400.CrossRefGoogle Scholar
Darder, M. Colilla, M. and Ruiz-Hitzky, E., 2005 Chitosan-clay nanocomposites: Application as electrochemical sensors Applied Clay Science 28 199208.CrossRefGoogle Scholar
Darder, M. Lopez-Blanco, M. Aranda, P. Aznar, A.J. Bravo, J. and Ruiz-Hitzky, E., 2006 Microfibrous chitosansepiolite nanocomposites Chemistry of Materials 18 16021610.CrossRefGoogle Scholar
Davidson, E.A. Chorover, J. and Dail, D.B., 2003 A mechanism of abiotic immobilization of nitrate in forest ecosystems: The ferrous wheel hypothesis Global Change Biology 9 228236.CrossRefGoogle Scholar
Devlin, J.F. Eedy, R. and Butler, B.J., 2000 The effects of electron donor and granular iron on nitrate transformation rates in sediments from a municipal water supply aquifer Journal of Contaminant Hydrology 46 8197.CrossRefGoogle Scholar
Durand-Piana, G. Lafuma, F. and Audebert, R., 1987 Flocculation and adsorption properties of cationic polyelectrolytes toward Na-montmorillonite dilute suspensions Journal of Colloid and Interface Science 119 474480.CrossRefGoogle Scholar
EPA (1986) Quality criteria for water, edited by U. S. E. P. Agency, Washington, D.C.Google Scholar
Ernstsen, V., 1996 Reduction of nitrate by Fe2+ in clay minerals Clays and Clay Minerals 44 599608.CrossRefGoogle Scholar
Ernstsen, V. Gates, W.P. and Stucki, J.W., 1998 Microbial reduction of structural iron in clays — a renewable source of reduction capacity Journal of Environmental Quality 27 761766.CrossRefGoogle Scholar
Gates, W.P. Wilkinson, H.T. and Stucki, J.W., 1993 Swelling properties of microbially reduced ferruginous smectite Clays and Clay Minerals 41 360364.CrossRefGoogle Scholar
Gates, W.P. Jaunet, A.-M. Tessier, D. Cole, M.A. Wilkinson, H.T. and Stucki, J.W., 1998 Swelling and texture of iron-bearing smectites reduced by bacteria Clays and Clay Minerals 46 487497.CrossRefGoogle Scholar
Hansen, H.C.B. and Koch, C.B., 1998 Reduction of nitrate to ammonium by sulphate green rust: Activation energy and reaction mechanism Clay Minerals 33 87101.CrossRefGoogle Scholar
Hansen, H.C.B. Koch, C.B. Nanckekrogh, H. Borggaard, O.K. and Sorensen, J., 1996 Abiotic nitrate reduction to ammonium: Key role of green rust Environmental Science & Technology 30 20532056.CrossRefGoogle Scholar
Hansen, H.C.B. Guldberg, S. Erbs, M. and Koch, C.B., 2001 Kinetics of nitrate reduction by green rusts — effects of interlayer anion and Fe(ii): Fe(iii) ratio Applied Clay Science 18 8191.CrossRefGoogle Scholar
Hofstetter, T.B. Schwarzenbach, R.P. and Haderlein, S.B., 2002 Reactivity of Fe(II) species associated with clay minerals Environmental Science & Technology 37 519528.CrossRefGoogle Scholar
Huang, C.P. Wang, H.W. and Chiu, P.C., 1998 Nitrate reduction by metallic iron Water Research 32 22572264.CrossRefGoogle Scholar
Huskic, M. Zagar, E. Zigon, M. Brnardic, I. Macan, J. and Ivankovic, M., 2009 Modification of montmorillonite by cationic polyesters Applied Clay Science 43 420424.CrossRefGoogle Scholar
Khaled, E.M. and Stucki, J.W., 1991 Fe oxidation state effects on cation fixation in smectites Soil Science Society of America Journal 55 550554.CrossRefGoogle Scholar
Khan, S.A. Mulvaney, R.L. and Mulvaney, C.S., 1997 Accelerated diffusion methods for inorganic-nitrogen analysis of soil extracts and water Soil Science Society of America Journal 61 936942.CrossRefGoogle Scholar
Komadel, P. and Stucki, J.W., 1988 Quantitative assay of minerals for Fe2+ and Fe3+ using 1,10-phenanthroline. 3. A rapid photochemical method Clays and Clay Minerals 36 379381.CrossRefGoogle Scholar
Kostka, J.E. Wu, J. Nealson, K.H. and Stucki, J.W., 1999 The impact of structural Fe(III) reduction by bacteria on the surface chemistry of smectite clay minerals Geochimica et Cosmochimica Acta 63 37053713.CrossRefGoogle Scholar
Lear, P.R. and Stucki, J.W., 1989 Effects of iron oxidation state on the specific surface area of nontronite Clays and Clay Minerals 37 547552.CrossRefGoogle Scholar
Letaief, S. and Detellier, C., 2009 Clay-polymer nanocomposite material from the delamination of kaolinite in the presence of sodium polyacrylate Langmuir 25 1097510979.CrossRefGoogle ScholarPubMed
Manceau, A. Lanson, B. Drits, V.A. Chateigner, D. Gates, W.P. Wu, J. Huo, D. and Stucki, J.W., 2000 Oxidation-reduction mechanism of iron in dioctahedral smectites: I. Crystal chemistry of oxidized reference nontronites American Mineralogist 85 133152.CrossRefGoogle Scholar
Miehr, R. Tratnyek, P.G. Bandstra, J.Z. Scherer, M.M. Alowitz, M.J. and Byłaska, E.J., 2004 Diversity of contaminant reduction reactions by zerovalent iron: Role of the reductate Environmental Science & Technology 38 139147.CrossRefGoogle ScholarPubMed
Mulvaney, R.L. Khan, S.A. Stevens, W.B. and Mulvaney, C.S., 1997 Improved diffusion methods for determination of inorganic nitrogen in soil extracts and water Biology and Fertility of Soils 24 413420.CrossRefGoogle Scholar
Ottley, C.J. Davison, W. and Edmunds, W.M., 1997 Chemical catalysis of nitrate reduction by iron(II) Geochimica et Cosmochimica Acta 61 18191828.CrossRefGoogle Scholar
Radian, A. and Mishael, Y.G., 2008 Characterizing and designing polycation-clay nanocomposites as a basis for imazapyr controlled release formulations Environmental Science & Technology 42 15111516.CrossRefGoogle ScholarPubMed
Rivett, M.O. Buss, S.R. Morgan, P. Smith, J.W.N. and Bemment, C.D., 2008 Nitrate attenuation in groundwater: A review of biogeochemical controlling processes Water Research 42 42154232.CrossRefGoogle ScholarPubMed
Ruiz-Hitzky, E.R. Darder, M. and Aranda, P., 2005 Functional biopolymer nanocomposites based on layered solids Journal of Materials Chemistry 15 36503662.CrossRefGoogle Scholar
Seitzinger, S.P., 1988 Denitrification in freshwater and coastal marine ecosystems: Ecological and geochemical significance Limnology and Oceanography 33 702724.CrossRefGoogle Scholar
Shen, S. Stucki, J.W., Havlin, J.L. and Jacobsen, J., 1994 Effects of iron oxidation state on the fate and behavior of potassium in soils Soil Testing: Prospects for Improving Nutrient Recommendations Madison, Wisconsin, USA Soil Science Society of America 173185.Google Scholar
Siantar, D.P. Schreier, C.G. Chou, C.S. and Reinhard, M., 1996 Treatment of 1,2-dibromo-3-chloropropane and nitrate-contaminated water with zero-valent iron or hydrogen/palladium catalysts Water Research 30 23152322.CrossRefGoogle Scholar
Sohn, K. Kang, S.W. Ahn, S. Woo, M. and Yang, S.K., 2006 Fe(0) nanoparticles for nitrate reduction: Stability, reactivity, and transformation Environmental Science & Technology 40 55145519.CrossRefGoogle ScholarPubMed
Stucki, J.W., 1981 The quantitative assay of minerals for Fe2+ and Fe3+ using 1,10-phenanthroline 2. A photochemical method. Soil Science Society of America Journal 45 638641.CrossRefGoogle Scholar
Stucki, J.W., Bergaya, F. Theng, B.K.G. and Lagaly, G., 2006 Properties and behavior of iron in clay minerals Handbook Of Clay Science Amsterdam Elsevier 429482.Google Scholar
Stucki, J.W. and Anderson, W.L., 1981 The quantitative assay of minerals for Fe2+ and Fe3+ using 1,10-phenanthroline. 1. Sources of variability Soil Science Society of America Journal 45 633637.CrossRefGoogle Scholar
Stucki, J.W. Golden, D.C. and Roth, C.B., 1984 Preparation and handling of dithionite-reduced smectite suspensions Clays and Clay Minerals 32 191197.CrossRefGoogle Scholar
Stucki, J.W. Low, P.F. Roth, C.B. and Golden, D.C., 1984 Effects of oxidation state of octahedral iron on clay swelling Clays and Clay Minerals 32 357362.CrossRefGoogle Scholar
Stucki, J.W. Goodman, B.A. and Schwertmann, U., 1988 Iron in Soils and Clay Minerals Dordrecht, The Netherlands D. Reidel 980 pp..Google Scholar
Stucki, J.W. Lee, K. Zhang, L.Z. and Larson, R.A., 2002 Effects of iron oxidation state on the surface and structural properties of smectites Pure and Applied Chemistry 74 21452158.CrossRefGoogle Scholar
Stucki, J.W. Lee, K. Goodman, B.A. and Kostka, J.E., 2007 Effects of in situ biostimulation on iron mineral speciation in a sub-surface soil Geochimica et Cosmochimica Acta 71 835843.CrossRefGoogle Scholar
Stucki, J.W., Pentrak, M., Su, K., and Pentrakova, L. (2013) Controlled atmosphere methods for redox-activated smectites. Clay Minerals, 47, (submitted).Google Scholar
Tekin, N. Kadinci, E. Demirbas, O. Alkan, M. and Kara, A., 2006 Adsorption of polyvinylimidazole onto kaolinite Journal of Colloid and Interface Science 296 472479.CrossRefGoogle ScholarPubMed
Tiedje, J.M., Zehnder, J.B.A., 1988 Ecology of denitrification and dissimilatory nitrate reduction to ammonium Biology of Anaerobic Microorganisms New York John Wiley & Sons 179244.Google Scholar
Till, B.A. Weathers, L.J. and Alvarez, P.J.J., 1998 Fe(0)-supported autotrophic denitrification Environmental Science & Technology 32 634639.CrossRefGoogle Scholar
van, O. H., 1953 Interlayer forces in bentonite Clays and Clay Minerals 2 418438.Google Scholar
van, O. H., 1963 An Introduction to Clay Colloid Chemistry New York Interscience 301 pp..Google Scholar
Westerhoff, P., 2003 Reduction of nitrate, bromate, and chlorate by zero valent iron (Fe-0) Journal of Environmental Engineering — ASCE 129 1016.CrossRefGoogle Scholar
WHO, 1996 Guidelines for drinking-water quality. Health criteria and other supporting information 2nd edition Geneva World Health Organization.Google Scholar
Yue, Q.Y. Li, Q. Gao, B.Y. Yuan, A.J. and Wang, Y., 2007 Formation and characteristics of cationic-polymer/bentonite complexes as adsorbents for dyes Applied Clay Science 35 68275.CrossRefGoogle Scholar
Zadaka, D. Radian, A. and Mishael, Y.G., 2010 Applying zeta potential measurements to characterize the adsorption on montmorillonite of organic cations as monomers, micelles, or polymers Journal of Colloid and Interface Science 352 171177.CrossRefGoogle ScholarPubMed