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Heavy metal adsorption on iron oxide and iron oxide-coated silica ...

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190102. Gupta V. K. (1998) Equilibrium uptake, sorpti<strong>on</strong> dynamics, process development,<strong>and</strong> column operati<strong>on</strong>s for the removal of copper <strong>and</strong> nickel from aqueous soluti<strong>on</strong><strong>and</strong> wastewater using activated clay, a low-cost adsorbent. Ind. Eng. Chem. Res. 37,192-202.103. Hayes K. F. (1987) Equilibrium, spectroscopic, <strong>and</strong> kinetic studies of i<strong>on</strong> <str<strong>on</strong>g>adsorpti<strong>on</strong></str<strong>on</strong>g>at the <strong>oxide</strong>/aqueous interface. PhD dissertati<strong>on</strong>, Stanford Univ., Palo Alto, CA.104. Hayes K. F. <strong>and</strong> Leckie J. O. (1986) Mechanism of lead i<strong>on</strong> <str<strong>on</strong>g>adsorpti<strong>on</strong></str<strong>on</strong>g> at thegoethite-water interface. In Geochemical Processes at Mineral Surfaces, ACSSymposium series 323 (ed. J. A. Davis <strong>and</strong> K. F. Hayes), pp. 114-141. AmericanChemical Society.105. Hayes K. F. <strong>and</strong> Leckie J. O. (1987) Modeling i<strong>on</strong>ic strength effects <strong>on</strong> cati<strong>on</strong><str<strong>on</strong>g>adsorpti<strong>on</strong></str<strong>on</strong>g> at hydrous <strong>oxide</strong>/soluti<strong>on</strong> interfaces. J. Colloid Interface Sci. 115, 564-572.106. Hayes K. F., Redden G., Ela W. <strong>and</strong> Leckie J. O. (1991) Surface complexati<strong>on</strong>models: An evaluati<strong>on</strong> of model parameter estimati<strong>on</strong> using FITEQL <strong>and</strong> <strong>oxide</strong>mineral titrati<strong>on</strong> data. J. Colloid Interface Sci. 142, 448-469.107. Hayes K. F. <strong>and</strong> Katz L. E. (1996) Applicati<strong>on</strong> of x-ray absorpti<strong>on</strong> spectroscopy forsurface complexati<strong>on</strong> modeling of <str<strong>on</strong>g>metal</str<strong>on</strong>g> i<strong>on</strong> sorpti<strong>on</strong>. In Physics <strong>and</strong> Chemistry ofMineral Surfaces (ed. Patrick V. Brady), CRC Press.108. Hayes K. F., Papelis C. <strong>and</strong> Leckie J. O. (1988) Modeling i<strong>on</strong>ic strength effects <strong>on</strong>ani<strong>on</strong> <str<strong>on</strong>g>adsorpti<strong>on</strong></str<strong>on</strong>g> at hydrous <strong>oxide</strong>/soluti<strong>on</strong> interfaces. J. Colloid Interface Sci. 125,717-726.109. Heidmann I., Christi I., Leu C. <strong>and</strong> Kretzschmar R. (2005) Competitive sorpti<strong>on</strong> ofprot<strong>on</strong>s <strong>and</strong> <str<strong>on</strong>g>metal</str<strong>on</strong>g> cati<strong>on</strong>s <strong>on</strong>to kaolinite: experiments <strong>and</strong> modeling. J. ColloidInterface Sci. 282, 270-282.110. Herbelin A. <strong>and</strong> Westall J. (1999) FITEQL: A computer Program for determinati<strong>on</strong>of chemical equilibrium c<strong>on</strong>stants from experimental data. Versi<strong>on</strong> 4.0. Departmentof Chemistry, Oreg<strong>on</strong> State University. Corvallis, OR.111. Hiemstra T. <strong>and</strong> van Riemsdijk W. H. (1996) A surface structural approach to i<strong>on</strong><str<strong>on</strong>g>adsorpti<strong>on</strong></str<strong>on</strong>g>: the charge distributi<strong>on</strong> (CD) model. J. Colloid Interface Sci. 179, 488-508.112. Hiemstra T., de Wit J. C. M. <strong>and</strong> van Riemsdijk W. H. (1989) Multisite prot<strong>on</strong><str<strong>on</strong>g>adsorpti<strong>on</strong></str<strong>on</strong>g> modeling at the solid/soluti<strong>on</strong> interface of (hydr)<strong>oxide</strong>s: A new approach.II. Applicati<strong>on</strong> to various important (hydr)<strong>oxide</strong>s. J. Colloid Interface Sci. 133, 105-117.

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