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R F Giese - One of the best experts on this subject based on the ideXlab platform.
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stability versus Flocculation of Particle suspensions in water correlation with the extended dlvo approach for aqueous systems compared with classical dlvo theory
Colloids and Surfaces B: Biointerfaces, 1999Co-Authors: W Wu, R F GieseAbstract:Abstract Stability versus Flocculation is studied for aqueous suspensions of a variety of mineral Particles (e.g. clay, asbestos, glass), via the extended DLVO (XDLVO) approach (which includes Lewis acid–base interactions in addition to van der Waals and electrostatic interactions), as well as via classical DLVO theory, as a function of absence or presence of plurivalent counterions. Also discussed are XDLVO and DLVO analyses of polymers, biopolymers, cells and phospholipids, in aqueous media, under similar conditions. It is concluded that, in aqueous media, XDLVO analysis practically always describes the interactions of immersed or dissolved Particles, cells, vesicles, polymers, biopolymers or phospholipids more accurately than classical DLVO theory.
W Wu - One of the best experts on this subject based on the ideXlab platform.
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stability versus Flocculation of Particle suspensions in water correlation with the extended dlvo approach for aqueous systems compared with classical dlvo theory
Colloids and Surfaces B: Biointerfaces, 1999Co-Authors: W Wu, R F GieseAbstract:Abstract Stability versus Flocculation is studied for aqueous suspensions of a variety of mineral Particles (e.g. clay, asbestos, glass), via the extended DLVO (XDLVO) approach (which includes Lewis acid–base interactions in addition to van der Waals and electrostatic interactions), as well as via classical DLVO theory, as a function of absence or presence of plurivalent counterions. Also discussed are XDLVO and DLVO analyses of polymers, biopolymers, cells and phospholipids, in aqueous media, under similar conditions. It is concluded that, in aqueous media, XDLVO analysis practically always describes the interactions of immersed or dissolved Particles, cells, vesicles, polymers, biopolymers or phospholipids more accurately than classical DLVO theory.