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April 3, 2026Journal of Energy Storage11 citationsOpen Access

A comparative study of the modified high voltage olivine-phosphate LiMPO4 (M = Fe, Mn, Co, Ni) as promising cathode materials for next-generation rechargeable batteries

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TMTheodore Azemtsop ManfoHLHannu Laaksonen

Key Points

  • The research aims to analyze the structural and electrochemical properties of modified olivine phosphates as cathode materials for lithium-ion batteries.
  • Comparative analysis of LiMPO4 with different cations (M = Fe, Mn, Co, Ni)
  • Rietveld refinement for structural characterization
  • Evaluation of electrochemical performance under various substitution scenarios
  • Discussion of optimization strategies like particle size reduction and surface modification
  • LiMnPO4 shows higher potential but slower lithium intercalation kinetics than LiFePO4.
  • Co and Ni substitutions enhance the electrochemical performance significantly.
  • LiCoPO4 and LiNiPO4 achieve operating potentials exceeding 5.0 V versus Li+/Li.
  • Strategies to improve performance include structural optimization and doping techniques.

Abstract

The growing demand for energy storage has driven extensive research into advanced cathode materials for lithium-ion batteries (LIBs), where cathode chemistry critically governs safety, cost, and electrochemical performance. Olivine lithium metal phosphates (LiMPO 4 ) are promising cathode candidates due to their structural robustness and thermal stability. Rietveld refinement confirms an orthorhombic olivine structure (Pnma), with lithium occupying octahedral sites and Mn 2+ and Co 2+ substituting for Fe 2+ . Cell parameters and unit-cell volume increase with Mn substitution; while LiFePO 4 (LFP) exhibits favorable electrochemical stability, LiMnPO 4 (LMP) offers higher operating potential but suffers from sluggish lithium intercalation kinetics. Recent studies demonstrate that partial substitution with Co and Ni can significantly enhance electrochemical performance by modifying lithium diffusion pathways and energetics within the olivine framework. This paper summarizes recent progress on olivine cathodes, including LiCoPO 4 (LCP) and LiNiPO 4 (LNPO), which exhibit operating potentials exceeding 5.0 V versus Li + /Li. Strategies to overcome intrinsic limitations, such as particle size reduction, surface modification, and cation doping, are critically discussed, highlighting clear correlations between structure and electrochemical behavior. Key material descriptors, including cohesive energy, lithium intercalation energetics, and electrochemical stability, are examined. Finally, emerging opportunities and remaining challenges for olivine phosphates in solid-state and aqueous energy storage systems are outlined, providing a forward-looking perspective for next-generation LIB development. Schematic depiction of an olivine phosphate cathode material-intercalated rechargeable lithium battery toward performance improvement. • A comparative structural and electrochemical analysis of LiMPO 4 (M = Fe, Mn, Co, Ni). • Effects of cation substitution on lattice parameters, energetics, and Li + transport. • Strategies to overcome kinetics: particle-size reduction, surface modification, and doping. • Prospects of high-voltage olivine phosphates for liquid and solid-state batteries.

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Cite This Study

Manfo et al. (2026) studied this question.

synapsesocial.com/papers/69cf5de95a333a821460c013https://doi.org/10.1016/j.est.2026.121797
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