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April 19, 2026Gongneng cailiao yu qijian xuebao0 citationsOpen Access

Bulk and surface synergistic regulation for constructing high-stability LiNiO2 cathode materials

BZBaoshan ZHANGBZBo ZhangHarbin Medical UniversitySGSiqi GUAN

Key Points

  • This research aims to enhance the stability and performance of LiNiO2 cathode materials through a novel modification technique.
  • Synthesize Zr-doped Ni(OH)2 precursor using co-precipitation method.
  • Coat with LaAlO3 and La2Li0.5Al0.5O4 in one lithiation step through high-temperature solid-state method.
  • Conduct comprehensive structural characterization and electrochemical testing to assess performance.
  • Zr-LNO@LA shows increased unit cell parameters and reduced Li+/Ni2+ cation mixing.
  • Improved stability of lattice oxygen and overall structural stability.
  • Demonstrated significant enhancement in discharge Coulombic efficiency and rate capability.
  • Maintained excellent cycling performance after 200 cycles at 1 C and 500 cycles at 5 C.

Abstract

A modified LiNiO2 cathode material (Zr-LNO@LA) was synthesized through Zr4+ doping into the bulk phase of the Ni(OH)2 precursor using the co-precipitation method, followed by coating LaAlO3 and its derivative La2Li0.5Al0.5O4 onto the Zr-doped Ni(OH)2 precursor in a single lithiation step via the high-temperature solid-state method. This modification strategy effectively addresses the persistent challenges of continuous capacity fading and service life degradation observed in LiNiO2 (LNO) cathode materials during cycling, which are primarily attributed to interface and structural instability. Comprehensive structural characterization and electrochemical testing reveal that this modification approach increases the unit cell parameters of LNO, reduces the extent of Li+/Ni2+ cation mixing, enhances the stability of lattice oxygen, and improves the overall structural stability of the cathode material. Additionally, the residual lithium content is significantly reduced, and interface stability is markedly strengthened. The Zr-LNO@LA cathode material exhibits a substantial improvement in initial discharge Coulombic efficiency and rate capability. Furthermore, its cycling performance is considerably enhanced, maintaining excellent stability after 200 cycles at 1 C and 500 cycles at 5 C.

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Cite This Study

ZHANG et al. (2026) studied this question.

synapsesocial.com/papers/69e4739a010ef96374d8f642https://doi.org/10.3724/jfmd.2510087
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