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January 22, 2026Advanced Functional Materials3 citations

Regulating Reversibility of Anion Redox and Electronic Structure via Controlled Surface Oxygen Vacancies in Lithium‐Rich Layered Oxides

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YGYang GaoZhejiang International Studies UniversityYZYinjia ZhangCentral South UniversityJWJiahui WuKing University

Key Points

  • The aim is to enhance the reversibility and cycling stability of lithium-rich layered oxides through engineered oxygen vacancies.
  • Gas-solid reaction fluorination strategy was used to create controllable oxygen vacancies.
  • In situ LaF3-coated composites with gradient F/La distribution were developed.
  • Density functional theory calculations analyzed electronic structure changes.
  • Differential Electrochemical Mass Spectrometry and in situ Fourier Transform Infrared Spectroscopy were employed to study oxygen behaviors.
  • Modified lithium-rich layered oxides achieved 91.1% capacity retention, compared to 74.3% for unmodified samples.
  • Engineered electronic structures improved redox pathways with reduced oxygen release during cycling.
  • Enhanced interfacial stability was confirmed through experimental techniques highlighting surface engineering effects.

Abstract

ABSTRACT Lithium‐rich layered oxides (LRLO) deliver high capacities through lattice oxygen redox, particularly associated with the monoclinic C 2 /m phase. However, their practical application is hindered by severe voltage decay and structural degradation. Here, gas‐solid reaction fluorination strategy is designed, which results controllable oxygen vacancies and in situ LaF 3 ‐coated composite with a gradient F/La distribution. This approach not only regulates the reaction sequence between the C 2 /m and R‐3m phases, but also reinforces interfacial stability. Density functional theory calculations reveal that the engineered electronic structure shifts the O 2p non‐bonding band (+0.367 eV) and the lower Hubbard band (+0.315 eV), enabling a dynamic redox pathway: localized Ni 2+ dominates at low states of charge, while delocalized Ni 3+ / 4+ suppresses O─O dimerization and strengthens TM─O bonding at high voltages. Differential Electrochemical Mass Spectrometry (DEMS) and in situ Fourier Transform Infrared Spectroscopy (FTIR) confirm that oxygen release is greatly suppressed, facilitating the formation of the robust CEI. Benefiting from these synergistic effects, the modified LRLO delivers 91.1% capacity retention vs. 74.3% for the bare sample. These findings clarify structure‐performance relationships in LRLO and highlight surface engineering as key to enhancing reversibility and cycling stability.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/6971be6b642b1836717e319ahttps://doi.org/10.1002/adfm.202526397
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