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  • Application of surface complexation models to anion adsorption by natural materials.

Application of surface complexation models to anion adsorption by natural materials.

Environmental toxicology and chemistry (2014-03-13)
Sabine Goldberg
ABSTRACT

Various chemical models of ion adsorption are presented and discussed. Chemical models, such as surface complexation models, provide a molecular description of anion adsorption reactions using an equilibrium approach. Two such models, the constant capacitance model and the triple layer model, are described in the present study. Characteristics common to all the surface complexation models are equilibrium constant expressions, mass and charge balances, and surface activity coefficient electrostatic potential terms. Methods for determining parameter values for surface site density, capacitances, and surface complexation constants also are discussed. Spectroscopic experimental methods of establishing ion adsorption mechanisms include vibrational spectroscopy, nuclear magnetic resonance spectroscopy, electron spin resonance spectroscopy, X-ray absorption spectroscopy, and X-ray reflectivity. Experimental determinations of point of zero charge shifts and ionic strength dependence of adsorption results and molecular modeling calculations also can be used to deduce adsorption mechanisms. Applications of the surface complexation models to heterogeneous natural materials, such as soils, using the component additivity and the generalized composite approaches are described. Emphasis is on the generalized composite approach for predicting anion adsorption by soils. Continuing research is needed to develop consistent and realistic protocols for describing ion adsorption reactions on soil minerals and soils. The availability of standardized model parameter databases for use in chemical speciation-transport models is critical.

MATERIALS
Product Number
Brand
Product Description

Molybdenum, rod, 200mm, diameter 10.0mm, centerless ground, 99.9%
Molybdenum, rod, 200mm, diameter 25mm, centerless ground, 99.9%
Molybdenum, rod, 100mm, diameter 15.0mm, centerless ground, 99.9%
Molybdenum, tube, 1000mm, outside diameter 1.0mm, inside diameter 0.7mm, wall thickness 0.15mm, 99.9%
Molybdenum, rod, 500mm, diameter 1.5mm, centerless ground, 99.9%
Molybdenum, rod, 100mm, diameter 8.0mm, centerless ground, 99.9%
Boron, monofilament, 20m, diameter 0.2mm
Boron, monofilament, 200m, diameter 0.1mm
Molybdenum, wire reel, 1000m, diameter 0.03mm, hard, 99.95%
Molybdenum, tube, 100mm, outside diameter 2.0mm, inside diameter 1.3mm, wall thickness 0.35mm, 99.9%
Sigma-Aldrich
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Molybdenum, powder, 10 μm, ≥99.95% trace metals basis
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Molybdenum, powder, 1-5 μm, ≥99.9% trace metals basis
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Boron, crystalline, 1 cm, 99.7% trace metals basis
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Molybdenum, nanopowder, <100 nm particle size (TEM), 99.8% trace metals basis
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Molybdenum, foil, thickness 1.0 mm, ≥99.9% trace metals basis
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Molybdenum, foil, thickness 0.1 mm, ≥99.9% trace metals basis
Molybdenum, foil, 10mm disks, thickness 0.01mm, 99.9%
Molybdenum, foil, 25mm disks, thickness 0.015mm, annealed, 99.9%
Molybdenum, foil, 0.5m coil, thickness 0.05mm, annealed, 99.9%
Molybdenum, foil, 10mm disks, thickness 0.005mm, 99.9%
Molybdenum, foil, 15mm disks, thickness 0.015mm, annealed, 99.9%
Molybdenum, foil, 0.5m coil, thickness 0.015mm, as rolled, 99.9%
Molybdenum, foil, 25mm disks, thickness 0.01mm, 99.9%
Molybdenum, foil, 25mm disks, thickness 0.20mm, annealed, 99.9%
Molybdenum, foil, 10m coil, thickness 0.04mm, coil width 0.7mm, annealed, 99.9%
Molybdenum, foil, 10mm disks, thickness 0.025mm, annealed, 99.9%
Molybdenum, foil, 50mm disks, thickness 0.008mm, 99.9%