Enabling Magnesium Anodes by Tuning the Electrode/Electrolyte Interfacial Structure.
Xiaoyu Wen1, Zhou Yu2,3, Yifan Zhao4
1Department of Chemical and Environmental Engineering, University of California, Riverside, California 92521, United States.
ACS Applied Materials & Interfaces
|November 1, 2021
Summary
Adding sodium cations to magnesium-ion battery electrolytes prevents magnesium anode passivation. This novel mechanism enhances magnesium plating and stripping reversibility for improved battery performance.
Area of Science:
- Materials Science
- Electrochemistry
- Battery Technology
Background:
- Magnesium (Mg)-ion batteries offer high theoretical capacity but suffer from poor reversibility due to Mg anode surface passivation.
- Electrolyte anion reduction, specifically bis(trifluoromethanesulfonyl)imide (TFSI-), is a primary cause of this passivation layer formation.
- This limits the electrochemical performance and practical application of Mg-ion batteries.
Purpose of the Study:
- To introduce a new deposition mechanism for highly reversible Mg plating and stripping in Mg-ion batteries.
- To investigate the role of sodium cations (Na+) in altering the interfacial chemistry of Mg anodes.
- To suppress the decomposition of TFSI- anions and prevent passivation layer formation.
Main Methods:
- Molecular dynamics simulations to understand cation interactions at the Mg anode interface.
- Electrochemical analyses (plating/stripping) to evaluate reversibility and overpotential.
- Microscopic and spectroscopic techniques to characterize the Mg anode surface morphology and composition.
Main Results:
- Molecular dynamics simulations indicated that Na+ cations form a significant population in the interfacial double layer, excluding TFSI- anions.
- This exclusion effectively suppressed TFSI- decomposition and the formation of passivation layers on the Mg surface.
- Electrochemical and surface analyses confirmed smoother Mg deposition morphology and reduced overpotentials compared to electrolytes without Na+.
Conclusions:
- The addition of Na+ to Mg-ion electrolytes fundamentally alters interfacial chemistry, enabling reversible Mg plating and stripping.
- This Na+-mediated mechanism effectively prevents Mg anode passivation by suppressing anion decomposition.
- The findings present a promising strategy for developing high-performance Mg-ion batteries.
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