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April 16, 2026Nature Communications3 citationsOpen Access

Oxidation-reconstructed Li+ transport enables high-tap-density single-crystal regeneration of spent LiNi0.5Co0.2Mn0.3O2 positive electrodes

SHShuaipeng HaoYZYi ZhangSLShuaiwei Liu

Key Points

  • This research aims to develop an effective regeneration method for spent LiNi0.5Co0.2Mn0.3O2 electrodes using oxidation techniques.
  • Proposed an oxidation strategy to enhance structural and morphological properties.
  • Studied the transformation of surface NiO to NiOOH during oxidation.
  • Analyzed the effect of bulk Ni2+ to Ni3+ oxidation on lithium ion transport.
  • Observed agglomeration of uniform precursor particles into large single-crystals during calcination.
  • Regenerated material achieved a high tap density of 2.57 g/cm3.
  • Retained 80.2% of its initial capacity after 600 charging cycles.
  • Provided improved Li+ diffusion pathways and uniformity in particle morphology.

Abstract

Direct regeneration offers a shortcut to close the material supply loop of lithium-ion batteries and is a promising recycling strategy. However, in spent LiNi0.5Co0.2Mn0.3O2 positive electrode, severe bulk cation disorder and surface rock salt phase hinder Li+ reinsertion. Moreover, the coexistence of single and poly-crystal particles in commercial batteries further complicates uniform re-lithiation and morphological regeneration. Herein, we propose an oxidation strategy to simultaneously regulate the structural reconstruction and morphological evolution of spent material. During oxidation, surface NiO transforms into NiOOH, while targeted oxidation of the anti-site Ni2+ to Ni3+ in the bulk reduces Li+/Ni2+ mixing. This reconstructs Li+ diffusion channels from surface to bulk, facilitating re-lithiation. Meanwhile, structural changes induce lattice expansion in secondary particles, causing their decomposition into primary particles and forming uniform precursor particles. These particles, with continuous Li+ transport channels and NiOOH surface, agglomerate into large single-crystal during calcination. The regenerated LiNi0.5Co0.2Mn0.3O2 achieves a high tap density of 2.57 g/cm3 and retains 80.2% capacity after 600 cycles. This work presents a concept for the direct regeneration of degradable positive materials.

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Cite This Study

Hao et al. (2026) studied this question.

synapsesocial.com/papers/69e07bc12f7e8953b7cbd673https://doi.org/10.1038/s41467-026-71730-3
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