To Be or Not to Be – Is MgSc2Se4 a Mg‐Ion Solid Electrolyte?

Author:

Glaser Clarissa12ORCID,Wei Zhixuan12,Indris Sylvio3,Klement Philip24,Chatterjee Sangam24,Ehrenberg Helmut3,Zhao‐Karger Zhirong56,Rohnke Marcus12,Janek Jürgen12

Affiliation:

1. Institute of Physical Chemistry Justus Liebig University Giessen Heinrich‐Buff‐Ring 17 D‐35392 Giessen Germany

2. Center for Materials Research (ZfM) Justus Liebig University Giessen Heinrich‐Buff‐Ring 16–17 D‐35392 Giessen Germany

3. Institute for Applied Materials ‐ Energy Storage Systems (IAM‐ESS) Karlsruhe Institute of Technology (KIT) Hermann‐von‐Helmholtz‐Platz 1 D‐76344 Eggenstein‐Leopoldshafen Germany

4. Institute of Experimental Physics I Justus Liebig University Giessen Heinrich‐Buff‐Ring 16 D‐35392 Giessen Germany

5. Institute of Nanotechnology (INT) Karlsruhe Institute of Technology (KIT) Hermann‐von‐Helmholtz‐Platz 1 D‐76344 Eggenstein‐Leopoldshafen Germany

6. Helmholtz Institute Ulm (HIU) Electrochemical Energy Storage Helmholtzstrasse 11 D‐89081 Ulm Germany

Abstract

AbstractMagnesium batteries offer promising potential as next‐generation sustainable energy‐storage solutions due to the high theoretical capacity of the magnesium metal anode. Facilitating dendrite‐free operation of metal anodes necessitates the development of solid electrolytes with high magnesium‐ion conductivity. While the chalcogenide spinel MgSc2Se4 is predicted to exhibit high magnesium ion mobility, unequivocal experimental evidence for magnesium ion conduction beyond short‐range motion is still missing. This study confirms magnesium‐ion transport in MgSc2Se4 through two independent electrochemical methods: electrochemical deposition of magnesium metal and reversible magnesium plating/stripping cycling. To overcome the difficulty of measuring the ionic conductivity of the mixed conducting MgSc2Se4 spinel, a pure ion conducting interlayer is employed in a symmetric transference cell. This approach effectively suppresses the electron transport, allowing accurate characterization of the ionic conductivity. The experimental results confirm a low migration barrier of (386 ± 24) meV for magnesium ion transport in MgSc2Se4 and demonstrate one of the best performances at room temperature among the reported inorganic magnesium solid electrolytes. The findings open a new door for exploring additional mixed magnesium ion conductors and highlight the potential of magnesium chalcogenide spinels as a promising class of magnesium solid electrolytes.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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