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Synergistic V-Mg Co-Doping for a High-Manganese LiMn0.9Fe0.1PO4 Cathode with Superior Cycling Stability and Rate
Cheng Zhang1,2, Yida Wang1, Long Ye1,2
1State Key Laboratory of Precision and Intelligent Chemistry, Department of Materials Science and Engineering, University of Science and Technology of China, Hefei, Anhui230026, P.R. China.
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High-manganese lithium manganese iron phosphate (LiMn0.9Fe0.1PO4, 9Mn-LMFP) offers a high-voltage platform for high-energy-density Li-ion batteries but suffers from poor electronic conductivity, Mn dissolution, and structural degradation. Herein, we report a V-Mg co-doping strategy via one-step ball milling combined with solid-state sintering to address these challenges. V3+ incorporation narrows the band gap from 3.39 to 1.34 eV and promotes a uniform and dense carbon coating on the particle surface. Mg2+ stabilizes the crystal framework, as evidenced by shortened Mn-O bonds and reduced Mn dissolution (from 6.128 to 3.139 ppm). Furthermore, V-Mg co-doping expands the solid-solution region (from 44.1 to 48.1% state of charge) while shrinking the two-phase region, indicating a lowered phase-transformation barrier. Consequently, the 9Mn-LMFP-V-Mg∥Li half-cells exhibit optimal electrochemical performance with a discharge capacity of 157.0 mAh g-1 at 0.1C, 123.7 mAh g-1 at 10C, and 89.7% capacity retention after 400 cycles at 1C, significantly outperforming the undoped counterpart (with a capacity retention of only 58.2%). When paired with the Li4Ti5O12 anode, 9Mn-LMFP-V-Mg delivers 118.6 mAh g-1 at 2C with 82.5% retention after 100 cycles. Kinetic analyses reveal reduced charge transfer resistance, enhanced Li+ diffusivity (approximately one order of magnitude higher), and increased pseudocapacitive contribution, leading to minimized polarization and efficient capacity release under high rates. This work provides a viable strategy for developing high-energy-density, long-life olivine cathodes.

