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Published on: November 11, 2013
Ionic-Potential-Guided Fluoride Engineering of Reversible Mn-Based Cathodes for Sodium-Ion Batteries
Shunli He1,2,3,4, Robert Scott Young2,5, Xing Shen1,3,6
1College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, Chongqing University, Chongqing 400044, P. R. China.
Abstract:
Mn-based layered oxides are promising cathode materials for sodium-ion batteries (SIBs) due to their high capacity and cost-effectiveness. However, their practical application is often hindered by structural instability and Jahn-Teller distortion associated with Mn3+. Herein, an ionic-potential-guided metal-fluoride engineering strategy is proposed to address these challenges by coincorporating AlF3 with transition-metal vacancies into a P2-type Mn-based layered oxide (Na0.76Ni0.225Al0.0167Mn0.75O1.95F0.05). This dual-site tuning elevates total ionic potential from 15.37 to 15.61 by simultaneously enhancing the cationic potential and reducing the anionic contribution, thereby promoting interlayer stability and suppressing Jahn-Teller effects. Multiscale characterization and density functional theory calculations reveal a reversible, solid-solution Na+ (de)intercalation mechanism with a negligible lattice strain (∼0.15%) and suppressed Mn3+ formation. The optimized cathode delivers an average voltage of ≈3.60 V within 2.0 to 4.3 V range, a reversible capacity of 134 mA h g-1, and 83% capacity retention after 100 cycles (2.0-4.3 V, 1C). In contrast, the pristine counterpart shows a lower average voltage of 3.32 V and a rapid capacity drop to ∼50 mA h g-1 by the second cycle. These findings establish the ionic-potential-guided AlF3 incorporation as a robust and scalable strategy for designing highly reversible, high-voltage, and long-life cathodes for next-generation SIBs.
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