Abstract
Lithium metal is considered one of the most attractive anode materials for next-generation batteries. However, the practical application of rechargeable Li-metal batteries has been hindered by the uncontrollable growth of Li dendrites and large volume changes during electrochemical cycling, leading to low Coulombic efficiency and safety concerns. This study reports a facile process of printing copper nitride nanowires (Cu 3 N NWs) onto Li metal powder (LMP) composite anode surface via a roll-pressing technique. Cu 3 N readily reacts with Li to form lithium nitride (Li 3 N), which is regarded as an excellent component for the interfacial layer on Li metal. The Li 3 N layer possesses a high ionic conductivity and ensures a homogeneous Li-ion flux, resulting in the suppression of dendrites. As a result, Li/Li symmetric cells assembled with the Li 3 N-LMP electrode exhibited lower overpotentials and superior cycling performance. Furthermore, NCM622/Li 3 N-LMP full cells demonstrated better capacity retention behavior (over 90% after 250 cycles) and higher discharge capacities during rate capability tests compared to the bare LMP cell. This study highlights the importance of a rational design of interfacial layers on LMP anodes for stable and long-term cycling.
Cite
CITATION STYLE
Dzakpasu, C. B., Gyan-Barimah, C., Kang, D., Song, J., Jin, D., Yu, J.-S., & Lee, Y. M. (2024). Artificial Li 3 N SEI-Enforced Stable Cycling of Li Powder Composite Anode in Carbonate Electrolytes. Journal of The Electrochemical Society, 171(2), 020527. https://doi.org/10.1149/1945-7111/ad24be
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