Separation Science and Technology · 1981 · 160 citations · 14 references
EngineeringMembrane CharacterizationCu2+ TransferChemical EngineeringSimultaneous PermeabilityWater TreatmentTransport PhenomenaLiquid MembranesMembrane ProcessMembrane TechnologyInterfacial Chemical ReactionsMembrane PermeationElectrochemistryMass Transfer RateMembrane FormationMembrane DiffusionEnvironmental EngineeringWater PurificationMass Transfer
Abstract Equations describing the permeability of a liquid membrane to metal cations have been derived taking into account aqueous diffusion, membrane diffusion, and interfacial chemical reactions as simultaneous permeability controlling factors. Diffusion and chemical reactions have been coupled by a simple model analogous to the one previously described by us to represent liquid-liquid extraction kinetics. The derived equations, which make use of experimentally determined interfacial reaction mechanisms, qualitatively fit unexplained literature data regarding Cu2+ transfer through liquid membranes. Their use to predict and optimize membrane permeability in practical separation processes by setting the appropriate concentration of the membrane carrier [LIX 64 (General Mills), a commercial β-hydroxy-oxime] and the pH of the aqueous copper feed solution is briefly discussed.
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Richard W. Baker, M.E. Tuttle, Dervla Kelly et al. · Journal of Membrane Science · 1977 · 166 citations
C. F. Reusch, E. L. Cussler · AIChE Journal · 1973 · 165 citations
E. L. Cussler · AIChE Journal · 1971 · 158 citations
Membrane Fusion, Membrane Formation, Membrane Biophysics +15