Electrostatic interaction of macroparticles in a plasma in the strong screening regime
- Authors: Filippov A.V.1, Derbenev I.N.1,2, Pautov A.A.1,3, Rodin M.M.1,3
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Affiliations:
- Russian Federation State Research Center “Troitsk Institute for Innovation and Fusion Research,”
- School of Chemistry
- Moscow Institute of Physics and Technology (State University)
- Issue: Vol 125, No 3 (2017)
- Pages: 518-529
- Section: Statistical, Nonlinear, and Soft Matter Physics
- URL: https://journals.rcsi.science/1063-7761/article/view/192597
- DOI: https://doi.org/10.1134/S1063776117080040
- ID: 192597
Cite item
Abstract
We have studied the electrostatic interaction of spherical particles in an equilibrium plasma or an electrolyte in the moderate and strong screening regimes when the macroparticle size is comparable with or much larger than the Debye screening radius. We have developed an approximate theory of the electrostatic interaction of macroparticles in the case of constant potentials of their surfaces in the weak or moderate screening regimes. In this theory, the charges of macroparticles with a fixed spacing between them are determined using vacuum capacitive coefficients, which are corrected taking into account the plasma screening effects. The force of interaction with the resultant charges is calculated based on the solution of the problem of interaction in a homogeneous dielectric (vacuum) and is multiplied by the plasma factor. We have also obtained an approximate solution to the problem in the strong screening regime. Comparison with the exact solution has demonstrated high accuracy of the proposed methods of calculation.
About the authors
A. V. Filippov
Russian Federation State Research Center “Troitsk Institute for Innovation and Fusion Research,”
Author for correspondence.
Email: fav@triniti.ru
Russian Federation, Troitsk, Moscow, 108840
I. N. Derbenev
Russian Federation State Research Center “Troitsk Institute for Innovation and Fusion Research,”; School of Chemistry
Email: fav@triniti.ru
Russian Federation, Troitsk, Moscow, 108840; Nottingham, NG9 2SP
A. A. Pautov
Russian Federation State Research Center “Troitsk Institute for Innovation and Fusion Research,”; Moscow Institute of Physics and Technology (State University)
Email: fav@triniti.ru
Russian Federation, Troitsk, Moscow, 108840; Dolgoprudnyi, Moscow oblast, 141701
M. M. Rodin
Russian Federation State Research Center “Troitsk Institute for Innovation and Fusion Research,”; Moscow Institute of Physics and Technology (State University)
Email: fav@triniti.ru
Russian Federation, Troitsk, Moscow, 108840; Dolgoprudnyi, Moscow oblast, 141701
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