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Embarras de richesses in non-DLVO colloid interactions
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Embarras de richesses in non-DLVO colloid interactions
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In its original formulation, the seminal Deryaguin-Landau-Verwey-Overbeek (DLVO) theory of colloidal stability seemed like a simple but realistic description of the world of colloid interactions in electrolyte solutions. It is based on a straightforward superposition of the mean-field Poisson-Boltzmann (PB) electrostatics with the electrodynamic van der Waals (vdW) interactions driven by thermal and quantum fluctuations. However, subsequent developments continued to reveal a much richer and deeper structure of fundamental interactions on the nano- and micro-scale: the granularity and structure of the solvent, charging equilibria of dissociable charge groups, inhomogeneous charge distributions, the finite size of the ions, non-mean-field electrostatics, ion-ion correlations, and more. Today, the original simplicity is gone and we are left with an embarrassingly rich variety of interactions that defy simple classification and reduction to a few fundamental mechanisms. In this mini-review, we comment on the contemporary state-of-the-art picture of colloidal interactions, in view of some recent progress in experiments.
Forward citations
Cited by 2 Pith papers
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Electrostatic-Elastic Softening and Ultraviolet Instability Driven by Non-DLVO Interactions in Charged Colloidal Crystals
Gaussian fluctuation analysis reveals that non-DLVO electrostatic-elastic coupling in charged colloidal crystals causes short-wavelength modulus softening and ultraviolet instability for coupling parameter ξ > 1, whil...
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Electrostatic-Elastic Softening and Ultraviolet Instability Driven by Non-DLVO Interactions in Charged Colloidal Crystals
For a minimal electrostatics-elasticity model of charged colloidal crystals, the uniform phase becomes unstable against short-wavelength distortions when the coupling parameter ξ exceeds 1.
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