Uphill diffusion in multicomponent mixtures

Подъемная диффузия в многокомпонентных смесях
Rajamani Krishna
2015-01-01

chemical potential gradientsmulticomponent mixturesserpentine trajectories in composition spacethermodynamic non-idealitiesuphill diffusion
Molecular diffusion is an omnipresent phenomena that is important in a wide variety of contexts in chemical, physical, and biological processes. In the majority of cases, the diffusion process can be adequately described by Fick's law that postulates a linear relationship between the flux of any species and its own concentration gradient. Most commonly, a component diffuses down the concentration gradient. The major objective of this review is to highlight a very wide variety of situations that cause the uphill transport of one constituent in the mixture. Uphill diffusion may occur in multicomponent mixtures in which the diffusion flux of any species is strongly coupled to that of its partner species. Such coupling effects often arise from strong thermodynamic non-idealities. For a quantitative description we need to use chemical potential gradients as driving forces. The transport of ionic species in aqueous solutions is coupled with its partner ions because of the electro-neutrality constraints; such constraints may accelerate or decelerate a specific ion. When uphill diffusion occurs, we observe transient overshoots during equilibration; the equilibration process follows serpentine trajectories in composition space. For mixtures of liquids, alloys, ceramics and glasses the serpentine trajectories could cause entry into meta-stable composition zones; such entry could result in phenomena such as spinodal decomposition, spontaneous emulsification, and the Ouzo effect. For distillation of multicomponent mixtures that form azeotropes, uphill diffusion may allow crossing of distillation boundaries that are normally forbidden. For mixture separations with microporous adsorbents, uphill diffusion can cause supra-equilibrium loadings to be achieved during transient uptake within crystals; this allows the possibility of over-riding adsorption equilibrium for achieving difficult separations.
1
Chemical potential gradients, not just concentration gradients, are required for quantitative description of coupled diffusion and uphill transport.
2
Electroneutrality constraints couple ionic species in aqueous solutions and can accelerate or decelerate specific ions, producing uphill diffusion.
3
Entry into metastable zones from serpentine trajectories can induce phenomena like spinodal decomposition, spontaneous emulsification (Ouzo effect), crossing azeotropic distillation boundaries, and supra-equilibrium adsorption loadings.
4
Uphill diffusion occurs in multicomponent mixtures when diffusion fluxes of species are strongly coupled to partner species, often due to thermodynamic non-idealities.
5
Uphill diffusion produces transient overshoots and serpentine trajectories in composition space during equilibration, potentially entering metastable composition zones.

Uphill diffusion in multicomponent mixtures

Mechanisms, driving forces, coupling effects and consequences of uphill transport (including transient overshoots, serpentine composition trajectories, effects in ionic solutions, liquid/alloy/ceramic/glass mixtures, azeotropic distillation, and supra-equilibrium adsorption) in multicomponent diffusion

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2015-01-01
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Rajamani Krishna
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