paper

Attraction of like-charged walls with counterions only: Exact results for the 2D cylinder geometry

arXiv:2011.11367 · doi:10.1007/s10955-020-02642-9

Abstract

We study a 2D system of identical mobile particles on the surface of a cylinder of finite length and circumference , immersed in a medium of dielectric constant . The two end-circles of the cylinder are like-charged with the fixed uniform charge densities, the particles of opposite charge ( being the elementary charge) are coined as ``counterions''; the system as a whole is electroneutral. Such a geometry is well defined also for finite numbers of counterions . Our task is to derive an effective interaction between the end-circles mediated by the counterions in thermal equilibrium at the inverse temperature . The exact solution of the system at the free-fermion coupling is used to test the convergence of the pressure as the (even) number of particles increases from to . The pressure as a function of distance is always positive (effective repulsion between the like-charged circles), decaying monotonously; the numerical results for counterions are very close to those in the thermodynamic limit . For the couplings with , there exists a mapping of the continuous two-dimensional (2D) Coulomb system with particles onto the one-dimensional (1D) lattice model of sites with interacting sets of anticommuting variables. This allows one to treat exactly the density profile, two-body density and the pressure for the couplings and , up to particles. Our main finding is that the pressure becomes negative at large enough distances if and only if both like-charged walls carry a nonzero charge density. This indicates a like-attraction in the thermodynamic limit as well, starting from a relatively weak coupling constant in between 2 and 4.

35 pages, 6 figures

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