Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
9675544 | Colloids and Surfaces A: Physicochemical and Engineering Aspects | 2005 | 6 Pages |
Abstract
Effective interactions are conveniently determined from experimental or numerical data by fitting a Debye-Hückel potential with an effective charge Zâ and an effective electrolyte concentration câ as free parameters. In this contribution we numerically solved the Poisson-Boltzmann equation to obtain the so-called renormalised charge ZPBCâ. For sufficiently large bare charge Z one finds a saturation of Zâ which scales as Zâ=Aa/λB, where a is the particle radius, λB the Bjerrum length and A a proportionality factor of order (8-10). The saturation value increases with increased total micro-ion concentration and shows a shallow minimum as a function of packing fraction. In addition, the bulk shear modulus G was measured along the melting line of a colloidal crystal to obtain ZGâ and molecular dynamics simulations were performed within the primitive model for a pair of particles at different added salt concentration to obtain ZMDâ. ZPBCâ was then used as reference for an extensive comparison to other effective charges as obtained in the present paper and taken from literature. We observe ZGâ to be somewhat smaller than ZPBCâ and other bulk experimental effective charges, while the simulation yields ZMDââZâ«ZPBCâ. These differences are discussed in the light of charge renormalisation concepts and three and many body interactions.
Related Topics
Physical Sciences and Engineering
Chemical Engineering
Colloid and Surface Chemistry
Authors
L. Shapran, M. Medebach, P. Wette, T. Palberg, H.J. Schöpe, J. Horbach, T. Kreer, A. Chatterji,