Understanding electrochemical interfaces through comparing experimental and computational charge density-potential curves

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Abstract

Electrode-electrolyte interfaces play a decisive role in electrochemical charge accumulation and transfer processes. Theoretical modelling of these interfaces is critical to decipher the microscopic details of such phenomena. Different force field-based molecular dynamics protocols are compared here in a view to connect calculated and experimental charge density-potential relationships. Platinum-aqueous electrolyte interfaces are taken as a model. The potential of using experimental charge density-potential curves to transform cell voltage into electrode potential in force-field molecular dynamics simulations, and the need for that purpose of developing simulation protocols that can accurately calculate the double-layer capacitance, are discussed.

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Mohandas, N., Bawari, S., Shibuya, J. J. T., Ghosh, S., Mondal, J., Narayanan, T. N., & Cuesta, A. (2024, April 23). Understanding electrochemical interfaces through comparing experimental and computational charge density-potential curves. Chemical Science. Royal Society of Chemistry. https://doi.org/10.1039/d4sc00746h

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