Influence of Simple Salts on Solvent Reduction Stability at Mg‐Alloy Anodes Interface: A Potential‐Dependent DFT Study

Author:

Kim Hyemin1,Deng Min2ORCID,Fortuin Adrian3,Würger Tim1,Georgopanos Prokopios4,Kramer Denis3,Zheludkevich Mikhail1,Höche Daniel1

Affiliation:

1. Institute of Surface Science Helmholtz‐Zentrum Hereon Max‐Planck‐Straße 1 21502 Geesthacht Germany

2. School of Materials Science and Engineering Hebei University of Technology 300401 Tianjin China

3. Faculty of Mechanical and Civil Engineering Helmut‐Schmidt‐University Holstenhofweg 85 22043 Hamburg Germany

4. Institute of Membrane Research Helmholtz‐Zentrum Hereon Max‐Planck‐Straße 1 21502 Geesthacht Germany

Abstract

AbstractThe significance of incorporating anion species into electrolyte solvation structures, particularly with doubly charged Mg2 + ions, is investigated using the grand canonical density functional theory (GC‐DFT) approach. In an extension of previously established methodology, the work explores the thermodynamic stability in acetonitrile (AN) at the interface with Mg3Bi2 and Mg2Sn. Two different anions, TFSI and , are strategically incorporated based on energy comparisons. Despite the known chemical compatibility of alloy anodes with the electrolyte solution, the research reveals a novel form of solvent degradation, which is also reported in the case of pure Mg anode with conventional electrolytes. Notably, the AN molecule adjacent to anion species exhibits reduced susceptibility to reduction (−0.8 – −0.4 V vs Mg2 +/Mg) in the lower potential range in comparison with the solvation structure of full dissociation. Charge density difference and density of states analyses detail solvent molecules becoming electrophilic, with the LUMO overlapping with the Fermi level at lower potentials when the electrostatic interaction with anion species are considered. Experimental studies using nuclear magnetic resonance (NMR) spectroscopy and linear sweep voltammetry (LSV) validate the theoretical results, providing a comprehensive understanding. This methodology, augmenting prior approaches, provides valuable guidance for electrolyte composition based on predominant solvation structures in multivalent solutions.

Publisher

Wiley

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