Abstract
Lithium manganese iron phosphate (LiMnxFe1-xPO4, LMFP) offers higher energy density than LiFePO4 but suffers from sluggish kinetics and unfavorable cycling stability caused by Fe/Mn segregation and severe Jahn-Teller distortion of Mn3+. Herein, a precursor-engineered strategy is proposed using a homogeneous spinel FeMn2O4 precursor synthesized via solution combustion. Molecular-level chelation and rapid combustion pre-lock Fe and Mn cations into a uniform solid-solution framework, enabling the formation of LiMn0.67Fe0.33PO4 with highly homogeneous cation distribution and reduced lattice distortion. As a result, the LMFP cathode exhibits markedly reduced polarization (38 mV and 101 mV for Fe and Mn plateaus), enhanced Li+ diffusion coefficients (up to 6.75 × 10−12 cm2 s−1), and excellent rate capability, delivering ∼76 mAh g−1 at 10 C. Superior cycling stability is achieved with 89.2% capacity retention after 1000 cycles at 5 C. This work demonstrates precursor-level cation organization as an effective route to overcoming the kinetic and stability bottlenecks of manganese-based olivine cathodes.
| Original language | English |
|---|---|
| Article number | e76986 |
| Journal | Advanced Functional Materials |
| Volume | 36 |
| Issue number | 62 |
| DOIs | |
| Publication status | Published - 3 Aug 2026 |
| Externally published | Yes |
Keywords
- Jahn-Teller distortion suppression
- cation homogeneity
- lithium manganese iron phosphate
- precursor engineering
- rate capability
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