MetalWalls: Simulating electrochemical interfaces between polarizable electrolytes and metallic electrodes

Author:

Coretti Alessandro123ORCID,Bacon Camille45ORCID,Berthin Roxanne45ORCID,Serva Alessandra45ORCID,Scalfi Laura45ORCID,Chubak Iurii45ORCID,Goloviznina Kateryna45ORCID,Haefele Matthieu6ORCID,Marin-Laflèche Abel7,Rotenberg Benjamin45ORCID,Bonella Sara3ORCID,Salanne Mathieu458ORCID

Affiliation:

1. Faculty of Physics, University of Vienna, Kolingasse 14-16, 1090 Vienna, Austria

2. Department of Mathematical Sciences, Politecnico di Torino, I-10129 Torino, Italy

3. Centre Européen de Calcul Atomique et Moléculaire (CECAM), Ecole Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland

4. Sorbonne Université, CNRS, Physicochimie des Électrolytes et Nanosystèmes Interfaciaux, F-75005 Paris, France

5. Réseau sur le Stockage Electrochimique de l’Energie (RS2E), FR CNRS 3459, 80039 Amiens Cedex, France

6. CNRS, Université de Pau et des Pays de l’Adour, E2S UPPA, LMAP, 64000 Pau, France

7. Université Paris-Saclay, UVSQ, CNRS, CEA, Maison de la Simulation, 91191 Gif-sur-Yvette, France

8. Institut Universitaire de France (IUF), 75231 Paris, France

Abstract

Electrochemistry is central to many applications, ranging from biology to energy science. Studies now involve a wide range of techniques, both experimental and theoretical. Modeling and simulations methods, such as density functional theory or molecular dynamics, provide key information on the structural and dynamic properties of the systems. Of particular importance are polarization effects of the electrode/electrolyte interface, which are difficult to simulate accurately. Here, we show how these electrostatic interactions are taken into account in the framework of the Ewald summation method. We discuss, in particular, the formal setup for calculations that enforce periodic boundary conditions in two directions, a geometry that more closely reflects the characteristics of typical electrolyte/electrode systems and presents some differences with respect to the more common case of periodic boundary conditions in three dimensions. These formal developments are implemented and tested in MetalWalls, a molecular dynamics software that captures the polarization of the electrolyte and allows the simulation of electrodes maintained at a constant potential. We also discuss the technical aspects involved in the calculation of two sets of coupled degrees of freedom, namely the induced dipoles and the electrode charges. We validate the implementation, first on simple systems, then on the well-known interface between graphite electrodes and a room-temperature ionic liquid. We finally illustrate the capabilities of MetalWalls by studying the adsorption of a complex functionalized electrolyte on a graphite electrode.

Funder

European Research Council

Grand équipement National De Calcul Intensif

H2020 Research Infrastructures

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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