Simultaneous structure and surface engineering of metal-organic framework derived LiNi0.5-xFe2xMn1.5-xO4 cathode material for improving high voltage performance of lithium-ion batteries

Yi Hung Liu, Jia Han Liu, Yen Shen Kuo, Jenn Kun Kuo

Research output: Contribution to journalArticlepeer-review

Abstract

This study presents a novel material synthesis approach utilizing a terephthalic acid–based metal–organic framework as a precursor and using an ethanol-assisted hydrothermal treatment to produce a high-performance Fe-doped LiNi0.5Mn1.5O4 (LNMO) cathode material. This strategy yields a well-crystallized spinel structure with uniformly distributed transition-metal ions. Additionally, the appropriate quantity of Fe dopant can achieve the desired Mn3+/Mn4+ ratio, level of structural disordering, and crystal-phase purity for Fe-doped LNMO. The synthesis process also aids in forming an amorphous Li2CO3 surface layer, approximately 1-nm thick, which protects the active material from excessive reaction with electrolyte. The typical Fe-doped LNMO cathode (S-05) exhibits superior performance compared to a commercialized LNMO counterpart. It delivers an initial discharge capacity of 135/mAhg at 1C with exceptional cycling stability over 500 cycles (capacity retention of 90 %) under high voltage (5.0 V vs. Li+/Li). Furthermore, its rate capability significantly improves, with a capacity retention of 85% (5C/0.2C). This enhanced performance aligns with evidence of activated Ni2+/Ni3+/Ni4+ redox reactions and suppressed cathode electrolyte interphase resistance, leading to promoted Li+ diffusion. Moreover, it is found that the cathode helps alleviate electrolyte degradation at high voltages by inhibiting the formation of singlet oxygen in the electrolyte.

Original languageEnglish
Article number101711
JournalMaterials Today Energy
Volume46
DOIs
StatePublished - Dec 2024

Keywords

  • 5 V cathode material
  • Fe doping
  • LiNiMnO spinel
  • Lithium-ion battery
  • Metal-organic framework

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