Based on the Hamaker approach, this paper presents a general method to compute the retarded van der Waals (vdW) interaction potential and force between a spherical particle and a cylinder. The effects of the relative dimensions of the cylinder to the sphere were examined by this general method. Firs
The Electrical Double-Layer Interaction between a Spherical Particle and a Cylinder
β Scribed by Yongan Gu
- Publisher
- Elsevier Science
- Year
- 2000
- Tongue
- English
- Weight
- 84 KB
- Volume
- 231
- Category
- Article
- ISSN
- 0021-9797
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β¦ Synopsis
Based on the well-known Debye-H ΓΌckel approximation and the Derjaguin's integration method, this paper presents an integral solution for the electrical double-layer (EDL) interaction between a spherical particle and a cylinder. The effects of the relative dimensions of the cylinder to the sphere on the EDL interaction are studied using this numerical solution. The detailed numerical results indicate that, in general, the curvature effect on the EDL interaction cannot be neglected at small separation distances. The widely used sphere-flat plate approximation will considerably overestimate the actual EDL interaction between a spherical particle and a cylinder. The ratio of the radius of the particle to the EDL thickness, Ο = ΞΊ a p , also plays an important role in determining the EDL interaction at small dimensionless separation distances (β€3Ο -1 ). In addition, it is found that at small separation distances, the EDL interaction can become attractive between two asymmetric EDLs, even though their ΞΆ potentials have the same polarity.
π SIMILAR VOLUMES
weakly interacting that the electric potential due to both The superposition formula for the electrical double-layer interspheres can be approximated by the sum of the potentials action between two uniformly charged spherical particles imof each sphere in isolation. This approach is commonly remerse
The proximity effect of one or two flat surfaces on the doublelayer interaction between two identically charged colloidal particles immersed in an electrolyte is examined. Simple analytical formulas are presented for the interaction of (i) two particles in the vicinity of a charged flat surface and