TY - JOUR
T1 - Hierarchical Cation Order Enhances Intrinsic Phase Stability in High-Nickel Cathodes with Ultrahigh Initial Coulombic Efficiency
AU - Zhang, Weicheng
AU - Wu, Jiajie
AU - Shen, Yu
AU - Chao, Yu
AU - Shi, Dehuan
AU - Song, Kangwei
AU - Liu, Zheyuan
AU - Wang, Qian
AU - Qu, Ke
AU - Yang, Zhenzhong
AU - Yang, Chengkai
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/12/10
Y1 - 2025/12/10
N2 - Nickel-rich layered cathodes (e.g., LiNi0.7Co0.1Mn0.2O2) suffer from interfacial degradation and bulk phase transitions, resulting in capacity fading and structural instability. Conventional doping (e.g., Al, Mg) stabilizes the lattice but often exacerbates cation disorder, while surface coatings (e.g., Al2O3, TiO2) inhibit side reactions without suppressing bulk phase changes. Single-crystal cathodes improve mechanical stability yet remain susceptible to surface degradation. Although integrated doping-coating approaches (e.g., La2O3/La) show promise, they often rely on physical mixtures with limited atomic-level control. Here, a multi-tiered cation ordering strategy is reported through precisely designed interlayer (Ga3⁺/Ni2⁺/Li⁺/Ni2⁺) and intralayer (Li⁺/Ga3⁺) arrangements. This ordering suppresses Jahn–Teller distortion, spinel formation, and Li⁺/Ni2⁺ antisite defects, while facilitating Li⁺ transport. The modified cathode exhibits an initial Coulombic efficiency of 94.5% and retains 80% capacity after 430 cycles, with high stability at 4.5 V and 50 °C. This work provides an atomic-level ordering strategy for developing high-energy-density, long-life batteries.
AB - Nickel-rich layered cathodes (e.g., LiNi0.7Co0.1Mn0.2O2) suffer from interfacial degradation and bulk phase transitions, resulting in capacity fading and structural instability. Conventional doping (e.g., Al, Mg) stabilizes the lattice but often exacerbates cation disorder, while surface coatings (e.g., Al2O3, TiO2) inhibit side reactions without suppressing bulk phase changes. Single-crystal cathodes improve mechanical stability yet remain susceptible to surface degradation. Although integrated doping-coating approaches (e.g., La2O3/La) show promise, they often rely on physical mixtures with limited atomic-level control. Here, a multi-tiered cation ordering strategy is reported through precisely designed interlayer (Ga3⁺/Ni2⁺/Li⁺/Ni2⁺) and intralayer (Li⁺/Ga3⁺) arrangements. This ordering suppresses Jahn–Teller distortion, spinel formation, and Li⁺/Ni2⁺ antisite defects, while facilitating Li⁺ transport. The modified cathode exhibits an initial Coulombic efficiency of 94.5% and retains 80% capacity after 430 cycles, with high stability at 4.5 V and 50 °C. This work provides an atomic-level ordering strategy for developing high-energy-density, long-life batteries.
KW - intralayer cation order
KW - lithium batteries
KW - Ni-rich layered cathodes
KW - phase transition
UR - https://www.scopus.com/pages/publications/105021822291
U2 - 10.1002/smll.202510695
DO - 10.1002/smll.202510695
M3 - 文章
C2 - 41236824
AN - SCOPUS:105021822291
SN - 1613-6810
VL - 21
JO - Small
JF - Small
IS - 49
M1 - e10695
ER -