Stability studies of colloidal silica dispersions in binary solvent mixtures
Description
A series of monodispersed colloidal silica dispersions, of varying radii, has been prepared. These particles are hydrophilic in nature due to the presence of surface silanol groups. Some of the particles have been rendered hydrophobic by terminally grafting n-alkyl (C18) chains to the surface. The stability of dispersions of these various particles has been studied in binary mixtures of liquids, namely (i) ethanol and cyclohexane, and (ii) benzene and n-heptane. The ethanol - cyclohexane systems have been studied using a variety of techniques. Adsorption excess isotherms have been established and electrophoretic mobility measurements have been made. The predicted stability of the dispersions from D.V.L.O. calculations is compared to the observed stability. The hydrophilic silica particles behave as predicted by the calculations, with the zeta potential decreasing and the van der Waals attraction increasing with increasing cyclohexane concentration. The hydrophobic particles behave differently than expected, and the stability as a function of solvent mixture composition does not show a uniform trend. The effect of varying the coverage of C18 chains on the surface and the effect of trace water in the systems has also been investigated. Organophilic silica dispersions in benzene - n-heptane solvent mixtures show weak aggregation and phase separation into a diffuse 'gas-like' phase and a more concentrated 'liquid-like' phase, analogous to molecular condensation processes. Calculations of the van der Waals potential as a function of solvent mixture composition show good agreement with the observed stability. Determination of the number of particles in each phase at equilibrium allows the energy of flocculation to be determined using a simple thermodynamic relationship. Finally, the addition of an AB block copolymer to organophilic silica particles in benzene n-heptane solvent mixtures has been shown to have a marked effect on the dispersion stability. This stability can be explained in terms of the solvency of the blocks as a function of solvent mixture composition. When the solvent is good for both blocks, the dispersion is destabilised due to a depletion interaction. When the solvent is poor for one of the blocks, polymer adsorption occurs and the stability of the dispersion is enhanced. (author)
Availability note (English)
Available from British Library Document Supply Centre- DSC:DXN058531Additional details
Publishing Information
- Publisher
- University of Bristol
- Imprint Place
- Bristol (United Kingdom)
- Imprint Pagination
- [np]
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 34036494
- Subject category
- S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY;
- Resource subtype / Literary indicator
- Thesis, Non-conventional Literature
- Descriptors DEI
- ADSORPTION; COLLOIDS; DISPERSIONS; ELECTROPHORESIS; FLOCCULATION; ORGANIC POLYMERS; PHASE STABILITY; PHASE STUDIES; SILICA; SOLVENTS
- Descriptors DEC
- DISPERSIONS; MINERALS; ORGANIC COMPOUNDS; OXIDE MINERALS; POLYMERS; PRECIPITATION; SEPARATION PROCESSES; SORPTION; STABILITY