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Rational Design of Interfaces for High Current-Density Lithium Metal Anodes
Hongjiao Wang1,2,3,4, Bai Xue2, Yue Ma1
1Beijing Key Laboratory for Theory and Technology of Advanced Cell Materials, School of Materials Science and Engineering, Peking University, Beijing 100871, China.
ACS Applied Materials & Interfaces
|June 27, 2025
Summary
A novel trilayer protective coating, comprising silver, lithium fluoride, and poly(ethylene oxide), effectively stabilizes lithium metal anodes. This advancement enables stable cycling of lithium-ion batteries at high current densities, overcoming dendrite formation challenges.
Area of Science:
- Materials Science
- Electrochemistry
- Energy Storage
Background:
- Lithium metal anodes are crucial for high-energy-density batteries but suffer from dendrite growth, limiting practical application.
- Uncontrolled lithium dendrites cause short circuits and capacity fading, necessitating effective stabilization strategies.
Purpose of the Study:
- To develop and evaluate a trilayer protective coating for stabilizing lithium metal anodes.
- To enhance the cycling stability of lithium metal anodes at high current densities.
Main Methods:
- A trilayer coating composed of silver (Ag), lithium fluoride (LiF), and poly(ethylene oxide) (PEO) was rationally designed.
- The coating's components were optimized to facilitate Li+ transfer, suppress side reactions, and enhance mechanical integrity.
- Performance was evaluated using Li//Li symmetric cells and Li//LFP full cells under various current densities and cycling conditions.
Main Results:
- The trilayer coating demonstrated stable cycling of Li//Li symmetric cells for 1200 hours at 20 mA cm⁻².
- Li//LFP full cells achieved 1000 cycles at 1.09 mA cm⁻² and 80 cycles at 5 mA cm⁻².
- The coating effectively suppressed lithium dendrite growth and anode-electrolyte reactions.
Conclusions:
- The developed Ag/LiF/PEO trilayer coating provides a robust solution for stabilizing lithium metal anodes.
- This composite coating strategy, integrating alloyed, inorganic, and organic layers, offers a new pathway for designing stable solid electrolyte interphases (SEI).
- The findings pave the way for high-performance and safer lithium-metal-based batteries.
Keywords:
dendrite suppressionhigh current-densityinterface engineeringsolid electrolyte interphase lithium metal batterystability enhancement
