A thermodynamically guided interfacial precipitation strategy for high-power and long-life Ni-rich layered cathodes

  • Kim, Yejin
  • Shim, Jinha
  • Kim, Jongbeom
  • Kim, Duho
  • Bang, Jin-ho
Citations

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8
Citations

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7

초록

Interfacial engineering is crucial for developing high-performance Ni-rich layered cathodes for lithium-ion batteries. Here, we introduce an interfacial precipitation (IP) strategy, guided by first-principles calculations, to create a functionally graded cathode during precursor synthesis. Based on thermodynamic principles of bulk insolubility and phase separation kinetics, we achieved the selective precipitation of Co onto the surface of a Ni-rich hydroxide precursor. Upon high-temperature lithiation, this engineered precursor spontaneously forms a unique, bifunctional Co-rich spinel-like layer on the final LiNi<inf>0.88</inf>Co<inf>0.06</inf>Mn<inf>0.06</inf>O<inf>2</inf> (NCM) cathode. This architecture suppresses detrimental Li/Ni cation mixing and protects the active material. Consequently, the IP-driven NCM cathode demonstrates vastly superior rate capability, delivering 140.8 mA h g−1 at 5C, compared to 112.9 mA h g−1 for its conventionally prepared counterpart. This enhancement is attributed to significantly lower charge-transfer resistance and faster kinetics. Remarkably, in a full-cell configuration, the IP-driven NCM cathode maintains 81.5 % capacity after 1000 cycles at an aggressive 5C rate. This work presents a thermodynamically driven, scalable strategy for designing advanced cathodes with exceptional high-power performance and stability. © 2025 Science Press

키워드

High-rate performanceInterfacial precipitationNi-rich layered oxidePrecursor engineeringSpinel surface layerENABLING HIGH-ENERGYLITHIUMPERFORMANCEOXIDEBATTERIESCONSTANTKINETICSIMPACT
제목
A thermodynamically guided interfacial precipitation strategy for high-power and long-life Ni-rich layered cathodes
저자
Kim, YejinShim, JinhaKim, JongbeomKim, DuhoBang, Jin-ho
DOI
10.1016/j.jechem.2025.10.043
발행일
2026-03
유형
Article
저널명
Journal of Energy Chemistry
114
페이지
608 ~ 617