Relaxation dynamics of two interacting electrical double-layers in a 1D Coulomb system
arXiv:2105.08389 · doi:10.1088/1361-648X/ac1237
Abstract
We consider an out-of-equilibrium one-dimensional model for two electrical double-layers. With a combination of exact calculations and Brownian Dynamics simulations, we compute the relaxation time () for an electroneutral salt-free suspension, made up of two fixed colloids, with neutralizing mobile counterions. For odd, the two double-layers never decouple, irrespective of their separation ; this is the regime of like-charge attraction, where exhibits a diffusive scaling in for large . On the other hand, for even , no longer is the relevant length scale for setting the relaxation time; this role is played by the Bjerrum length. This leads to distinctly different dynamics: for even, thermal effects are detrimental to relaxation, increasing , while they accelerate relaxation for odd. Finally, we also show that the mean-field theory is recovered for large and moreover, that it remains an operational treatment down to relatively small values of ().
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