Microscopic Model for Cyclic Voltammetry of Porous Electrodes
Publication date
2022-05-18
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taverne
Abstract
Cyclic voltammetry (CV) is a widespread experimental technique for characterizing electrochemical devices such as supercapacitors. Despite its wide use, a quantitative relation between CV and microscopic properties of supercapacitors is still lacking. In this Letter, we use both the microscopic "stack-electrode"model and its equivalent circuit for predicting the cyclic voltammetry of electric double-layer formation in porous electrodes. We find that the dimensionless combination ωτn, with ω the scan frequency of the time-dependent potential and τn the relaxation timescale of the stack-electrode model, governs the CV curves and capacitance: the capacitance is scan-rate independent for ωτn1 and scan-rate dependent for ωτn≫1. With a single fit parameter and all other model parameters dictated by experiments, our model reproduces experimental CV curves over a wide range of ω. Meanwhile, the influence of the pore size distribution on the charging dynamics is investigated to explain the experimental data.
Keywords
Carbon, Double-layer, Taverne
Citation
Lin, Y, Lian, C, Berrueta, M U, Liu, H & Van Roij, R 2022, 'Microscopic Model for Cyclic Voltammetry of Porous Electrodes', Physical Review Letters, vol. 128, no. 20, 206001, pp. 1-6. https://doi.org/10.1103/PhysRevLett.128.206001