Copper uptake by silica and iron oxide under high surface coverage conditions: surface charge and sorption equilibrium modeling

被引:24
作者
Subramaniam, K
Vithayaveroj, V
Yiacoumi, S
Tsouris, C
机构
[1] Georgia Inst Technol, Sch Civil & Environm Engn, Atlanta, GA 30332 USA
[2] Oak Ridge Natl Lab, Oak Ridge, TN 37831 USA
基金
美国国家科学基金会;
关键词
D O I
10.1016/j.jcis.2003.07.012
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A sorption modeling approach based on surface complexation concepts was applied to predict copper uptake and its effects on the surface electrostatic potential of ferric oxide and silica colloids. Equilibrium modeling of copper uptake by ferric oxide using the traditional surface complexation model (SCM) was reasonably successful with some discrepancies especially in the acidic pH ranges and high colloid concentration cases. Good predictions of the ferric oxide charge reversals during uptake were obtained from the modeling. Based on the SCM predictions, copper removal from solution is due to the outer-sphere complexation of the first hydrolysis product, resulting in the surface-metal complex SO(-)CuOH(+). The SCM was found to be insufficient to describe copper uptake by silica particles. To address discrepancies between experimental data and SCM predictions, the SCM was modified to include attributes of the surface polymer model (SPM), which incorporates sorption of the dimeric copper species Cu(2)(OH)(2)(2+). The continuum model (CM) was also studied as a second modification to the SCM to include formation of surface precipitates. Both the SPM and the CM were successful in modeling copper uptake and potential variations as a function of pH at various solution conditions and colloid concentrations. From the SPM and CM predictions, it was concluded that for systems with high surface loadings, copper removal from solution occurs due to the formation of both monomeric and dimeric surface complexes, as well as through precipitation mechanisms. (C) 2003 Elsevier Inc. All rights reserved.
引用
收藏
页码:12 / 22
页数:11
相关论文
共 49 条
[1]  
[Anonymous], 1976, MINEQL: a computer program for the calculation of chemical equilibrium composition of aqueous systems
[2]  
Baes C.F., 1976, HYDROLYSIS CATIONS
[3]  
BENJAMIN MM, 1982, J WATER POLLUT CON F, V54, P1472
[4]   IMPROVED INFEASIBLE PATH OPTIMIZATION FOR SEQUENTIAL MODULAR SIMULATORS .2. THE OPTIMIZATION ALGORITHM [J].
BIEGLER, LT ;
CUTHRELL, JE .
COMPUTERS & CHEMICAL ENGINEERING, 1985, 9 (03) :257-267
[5]  
BROWN DS, 1987, MINTEQAI EQUILIBRIUM
[6]  
Brown GE., 1999, MINERAL WATER INTERF, V715, P14
[7]   XAFS study of Cu model compounds and Cu2+ sorption products on amorphous SiO2, γ-Al2O3, and anatase [J].
Cheah, SF ;
Brown, GE ;
Parks, GA .
AMERICAN MINERALOGIST, 2000, 85 (01) :118-132
[8]   EVIDENCE FOR MULTINUCLEAR METAL-ION COMPLEXES AT SOLID WATER INTERFACES FROM X-RAY ABSORPTION-SPECTROSCOPY [J].
CHISHOLMBRAUSE, CJ ;
ODAY, PA ;
BROWN, GE ;
PARKS, GA .
NATURE, 1990, 348 (6301) :528-531
[9]   Electrophoretic behaviour and viscosities of metal oxides in mixed surfactant systems [J].
Colic, M ;
Fisher, ML ;
Fuerstenau, DW .
COLLOID AND POLYMER SCIENCE, 1998, 276 (01) :72-80
[10]   Influence of the dielectric constant of the media on oxide stability in surfactant solutions [J].
Colic, M ;
Fuerstenau, DW .
LANGMUIR, 1997, 13 (25) :6644-6649