Theory of voltammetry in charged porous media
arXiv:1709.05073 · doi:10.1016/j.jelechem.2018.01.023
Abstract
We couple the Leaky Membrane Model, which describes the diffusion and electromigration of ions in a homogenized porous medium of fixed background charge, with Butler-Volmer reaction kinetics for flat electrodes separated by such a medium in a simple mathematical theory of voltammetry. The model is illustrated for the prototypical case of copper electro-deposition/dissolution in aqueous charged porous media. We first consider the steady state with three different experimentally relevant boundary conditions and derive analytical or semi-analytical expressions for concentration profiles, electric potential profiles, current-voltage relations and overlimiting conductances. Next, we perform nonlinear least squares fitting on experimental data, consider the transient response for linear sweep voltammetry and demonstrate good agreement of the model predictions with experimental data. The experimental datasets are for copper electrodeposition from copper(II) sulfate solutions in a variety of nanoporous media, such as anodic aluminum oxide, cellulose nitrate and polyethylene battery separators, whose internal surfaces are functionalized with positively and negatively charged polyelectrolyte polymers.
39 pages, 12 figures, 5 tables; clarified where other parameters are taken from and fixed typos
References in corpus (4)
- Theory of Chemical Kinetics and Charge Transfer based on Nonequilibrium Thermodynamics
- Analysis of electrolyte transport through charged nanopores
- Experimental Verification of Overlimiting Current by Surface Conduction and Electro-osmotic Flow in Microchannels
- Theory of linear sweep voltammetry with diffuse charge: unsupported electrolytes, thin films, and leaky membranes
Cited by in corpus (4)
- Linear stability analysis of transient electrodeposition in charged porous media: suppression of dendritic growth by surface conduction
- Deionization Shock Driven by Electroconvection in a Circular Channel
- Electrochemical impedance of electrodiffusion in charged medium under bias
- Theory of Faradaically Modulated Redox Active Electrodes for Electrochemically Mediated Selective Adsorption Processes