Pyromorphite formation from montmorillonite adsorbed lead
By: Tomasz Bajda, Tomasz Marchlewski and Maciej Manecki
Open Access
|Jul 2012References
- Basta, N. T., & McGowen, S. L. (2004). Evaluation of chemical immobilization treatments for reducing heavy metal transport in a smelter-contaminated soil.(1), 73-82. DOI: 10.1016/S0269-7491(03)00250-1.
- Chappell, M. A., & Scheckel, K. G. (2007). Pyromorphite formation and stability after quick lime neutralisation in the presence of soil and clay sorbents.(2), 109-113. DOI: 10.1071/EN06081.
- Cotter-Howells, J. (1996). Lead phosphate formation in soils.(1), 9-16. DOI: 10.1016/0269-7491(96)00020-6.
- Debela, F., Arocena, J. M., Thring, R. W., & Whitcombe, T. (2010). Organic acid-induced release of lead from pyromorhite and its relevance to reclamation of Pb-contaminated soils.(4), 450-456. DOI: 10.1016/j.chemosphere.2010.04.025.
- Flis, J., Borkiewicz, O., Bajda, T., Manecki, M., & Klasa, J. (2010). Synchrotron-based X-ray diffraction of the lead apatite series Pb(PO)Cl-Pb(AsO)Cl.(2), 207-214. DOI: 10.1107/S0909049509048705.
- Flis, J., Manecki, M., & Bajda, T. (2011). Solubility of pyromorphite Pb(PO)Cl - mimetite Pb(AsO)Cl solid solution series., (). DOI: 10.1016/j.gca.2011.01.021.
- Hettiarachchi, G. M., Pierzynski, G. M., & Ransom, M. D. (2000). In situ stabilization of soil lead using phosphorous and manganese oxide.(21), 4614-4619. DOI: 10.1021/es001228p.
- Hettiarachchi, G. M., Pierzynski, G. M., & Ransom, M. D. (2001). In situ stabilization of soil lead using phosphorous.(4), 1214-1221. DOI: 10.2134/jeq2001.3041214x.
- Lenoble, V., Deluchat, V., Serpaud, B., & Bollinger, J. C. (2003). Arsenite oxidation and arsenate determination by the molybdene blue method.(3), 267-276. DOI: 10.1016/S0039-9140(03)00274-1.
- Ma, Q. Y., Traina, S. J., & Logan, T. J. (1993). In situ lead immobilization by apatie.(9), 1803-1810. DOI: 10.1021/es00046a007.
- Ma, Q. Y., Triana, S. J., Logan, T. J., & Ryan, J. A. (1994). Effects of aqueous Al, Cd, Cu, Fe(II), Ni, and Zn on Pb immobilization by hydroxyapatite.(7), 1219-1228. DOI: 10.1021/es00056a007.
- Ma, L. Q., & Rao, G. N. (1997). Effects of phosphate rock sequential chemical extraction of lead in contaminated soils.(3), 788-794. DOI: 10.2134/jeq1997.00472425002600030028x.
- Manecki, M., Bogucka, A., Bajda, T., & Borkiewicz, O. (2006). Decrease of Pb bioavailability in soils by addition of phosphate ions.(4), 178-181. DOI: 10.1007/s10311-005-0030-1.
- Manecki, M., & Maurice, P. A. (2008). Siderophore promoted dissolution of pyromorphite.(12), 821-830. DOI: 10.1097/SS.0b013e31818e8968.
- Manecki, M., Maurice, P. A., & Traina, S. J. (2000). Kinetics of aqueous Pb reaction with apatites.(12), 920-933.
- Melamed, R., Cao, X., Chen, M., & Ma, L. Q. (2003). Field assessment of lead immobilization in a contaminated soil after phosphate application.(1-3), 117-127. DOI: 10.1016/S0048-9697(02)00469-2.
- Miretzky, P., & Fernandez-Cirelli, A. (2008). Phosphates for Pb immobilization in soils: a review.(3), 121-133. DOI: 10.1007/s10311-007-0133-y.
- Moore, D. M., & Reynolds Jr, R. C. (1997).New York: Oxford University Press.
- Mozgawa, W., Król, M., & Bajda, T. (2009). Application of IR spectra in the studies of heavy metal cations immobilization on natural sorbents., 427-433. DOI: 10.1016/j.molstruc.2008.12.028.
- Raicevic, S., Kaludjerovic-Radoicic, T., & Zouboulis, A. I. (2005). In situ stabilization of toxic metals in polluted soils using phosphates: theoretical prediction and experimental verification.(1), 41-53. DOI: 10.1016/j.jhazmat.2004.07.024.
- Ranatunga, T. D., Taylor, R. W., Schulthess, C. P., Ranatunga, D. R. A., Bleam, W. F., & Zenwo, Z. N. (2008). Lead sorption on phosphatepretreated kaolinite: Modeling, aqueous speciation, and thermodynamics.(5), 321-331. DOI: 10.1097/SS.0b013e31816d1e25.
- Ruby, M. V., Davis, A., & Nicholson, A. (1994). In-situ formation of lead phosphates in soils as a method to immobilize lead.(4), 646-654. DOI: 10.1021/es00053a018.
- Ryan, J. A., Zhang, P., Hesterberg, D., Chou, J., & Sayers, D. E. (2001). Formation of chloropyromorphite in a lead-contaminated soil amended with hydroxyapatite.(18), 3798-3803. DOI: 10.1021/es010634l.
- Sauvé, S., Martínez, C. E., McBride, M. B., & Hendershot, W. H. (2000). Adsorption of free lead (Pb) by pedogenic oxides, ferrihydrite, and leaf compost.(2), 595-599. DOI: 10.2136/sssaj2000.642595x.
- Scheckel, K. G., & Ryan, J. A. (2002). Effects of aging and pH on dissolution kinetics and stability of chloropyromorphite.(10), 2198-2204. DOI: 10.1021/es015803g.
- Stack, A. G., Erni, R., Browning, N. D., Casey, W. H. (2004). Pyromorphite growth on lead-sulfide surfaces.(21), 5529-5534. DOI: 10.1021/es049487s.
- Taylor, R. W., Bleam, W. F., Ranatunga, T. D., Schulthess, C. P., Senwo, Z. N., & Ranatunga, D. R. A. (2009). X-ray absorption near edge structure study of lead sorption on phosphate-treated kaolinite.(3), 711-717. DOI: 10.1021/es8020183.
- Xie, L., & Giammar, D. E. (2007). Equilibrium solubility and dissolution rate of the lead phosphate chloropyromorphite.(23), 8050-8055. DOI: 10.1021/es071517e.
- Zhang, P., & Ryan, J. A. (1998). Formation of pyromorphite in anglesite-hydroxyapatite suspensions under varying pH conditions.(21), 3318-3324. DOI: 10.1021/es980232m.
- Zhang, P., & Ryan, J. A. (1999a). Formation of chloropyromorphite from galena (PbS) in the presence of hydroxyapatite.(4), 618-624. DOI: 10.1021/es980314a.
- Zhang, P., & Ryan, J. A. (1999b). Transformation of Pb(II) from cerrusite to chloropyromorphite in the presence of hydroxyapatite., 33(4), 625-630. DOI: 10.1021/es980268e.
- Zhang, P., Ryan, J. A., & Bryndzia, L. T. (1997). Pyromorphite formation from goethite adsorbed lead., 31(9), 2673-2678. DOI: 10.1021/es970087x.
Language: English
Page range: 75 - 91
Published on: Jul 4, 2012
Published by: Mineralogical Society of Poland
In partnership with: Paradigm Publishing Services
Publication frequency: Volume open
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© 2012 Tomasz Bajda, Tomasz Marchlewski, Maciej Manecki, published by Mineralogical Society of Poland
This work is licensed under the Creative Commons License.