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Updated: Jan 9, 2026

The Effect of Charging and Discharging Lithium Iron Phosphate-graphite Cells at Different Temperatures on Degradation
Published on: July 18, 2018
Atmosphere and Phosphorus-Doping Effects on FeOOH-Derived Iron Oxides for Enhanced Lithium Storage Performance
Wei Cao1,2, Chenhan Xiong3, Tianlun Ren4
1Zhejiang Provincial Key Laboratory of Advanced Chemical Engineering Manufacture Technology, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310027, China.
None:
Iron oxide-based anodes are promising for lithium-ion batteries due to their high theoretical capacity, yet their practical performance is often limited by structural instability and poor cycling efficiency. Here, a combined strategy of controlled thermal treatment and phosphorus doping is employed to regulate the phase composition and morphology of FeOOH-derived iron oxides. Annealing atmosphere significantly impacts particle evolution, with air promoting porous-to-hollow structures and nitrogen favoring dense morphologies. Phosphorus incorporation enables direct conversion to Fe3O4 and, at elevated levels, induces phosphate formation. Density functional theory calculations indicate that phosphorus doping improves electronic conductivity, increases Li+ insertion energy, and lowers diffusion barriers, facilitating faster lithium transport. Benefiting from these synergistic effects, the optimized P-doped Fe3O4 (P-Fe3O4) electrode delivers a high reversible capacity of ∼469.2 mAh g-1 after 300 cycles at 0.2 A g-1 and achieves an enhanced initial Coulombic efficiency of ∼85.3% compared to ∼58.8% for the pure FeOOH anode.
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