Understanding the Initial Stages of Reversible Mg Deposition and Stripping in Inorganic Non-Aqueous Electrolytes
Pieremanuele Canepa, Gopalakrishnan Sai Gautam, Rahul Malik,, Saivenkataraman Jayaraman, Ziqin Rong, Kevin R. Zavadil, Kristin Persson,, Gerbrand Ceder

TL;DR
This study combines computational methods to understand how reversible magnesium deposition occurs in non-aqueous electrolytes, revealing key species and mechanisms that support Mg plating and stripping in battery systems.
Contribution
It provides detailed insights into the interfacial species and processes enabling reversible Mg deposition, guiding electrolyte design for multivalent batteries.
Findings
(MgCl)+ monomers are the active depositing species.
Adsorbed complexes require low energy for desolvation and charge transfer.
Cl dissociation at low THF coordination may lead to Cl incorporation.
Abstract
Multi-valent (MV) battery architectures based on pairing a Mg metal anode with a high-voltage ( 3 V) intercalation cathode offer a realistic design pathway toward significantly surpassing the energy storage performance of traditional Li-ion based batteries, but there are currently only few electrolyte systems that support reversible Mg deposition. Using both static first-principles calculations and molecular dynamics, we perform a comprehensive adsorption study of several salt and solvent species at the interface of Mg metal with an electrolyte of Mg and Cl dissolved in liquid tetrahydrofuran (THF). Our findings not only provide a picture of the stable species at the interface, but also explain how this system can support reversible Mg deposition and as such we provide insights in how to design other electrolytes for Mg plating and stripping. The active…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
