TY - JOUR
T1 - Ligand-Field Splitting Parameter Optimization Achieves Synergistic Enhancement of Transition Metal Redox Activity and Structural Stability in High-Voltage Sodium Layered Oxide Cathodes
AU - Zhou, Qiannan
AU - Li, Yu
AU - Li, Shuqiang
AU - Wang, Zilu
AU - Li, Qiaojun
AU - Lu, Xueying
AU - Qiu, Zhixu
AU - Wu, Chuan
AU - Bai, Ying
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/12/16
Y1 - 2025/12/16
N2 - Triggering oxygen anionic redox to achieve high-capacity NaxTMO2 faces a critical challenge because of the irreversible chemo-mechanical distortion and uncontrollable oxygen release at high voltage. To circumvent this issue, a strategy of stimulating transition metal (TM) redox activity based on the ligand-field splitting parameter (Δ) is proposed. Specifically, strongly polarized Mg−O−Fe configurations in the O3-NaNi0.1Fe0.2Mn0.5Mg0.2O2 (O3-NaNFMMO) is constructed to effectively optimize the electron occupancy state of Fe 3d orbital by reducing its Δ, thereby stimulating the Fe redox activity while alleviating excessive oxygen redox. Additionally, the Mg pillar in Na sites ensures more extractable Na+ and suppresses the Na-free layers formation at high voltage, which can simultaneously improve the specific capacity and cycling stability. As a result, the designed cost-effective O3-NaNFMMO cathode delivers an outstanding specific capacity of 198 mAh g−1 at 0.1 C and high-voltage cycling stability with 78% capacity retention after 1500 cycles at 5 C. Notably, the thermal degradation and air sensitivity, as the critical barriers to commercialization, are significantly suppressed in O3-NaNFMMO cathode. This work establishes a universal design principle for high-performance NaxTMO2 cathodes and offers a scalable pathway toward practical, cost-effective SIBs.
AB - Triggering oxygen anionic redox to achieve high-capacity NaxTMO2 faces a critical challenge because of the irreversible chemo-mechanical distortion and uncontrollable oxygen release at high voltage. To circumvent this issue, a strategy of stimulating transition metal (TM) redox activity based on the ligand-field splitting parameter (Δ) is proposed. Specifically, strongly polarized Mg−O−Fe configurations in the O3-NaNi0.1Fe0.2Mn0.5Mg0.2O2 (O3-NaNFMMO) is constructed to effectively optimize the electron occupancy state of Fe 3d orbital by reducing its Δ, thereby stimulating the Fe redox activity while alleviating excessive oxygen redox. Additionally, the Mg pillar in Na sites ensures more extractable Na+ and suppresses the Na-free layers formation at high voltage, which can simultaneously improve the specific capacity and cycling stability. As a result, the designed cost-effective O3-NaNFMMO cathode delivers an outstanding specific capacity of 198 mAh g−1 at 0.1 C and high-voltage cycling stability with 78% capacity retention after 1500 cycles at 5 C. Notably, the thermal degradation and air sensitivity, as the critical barriers to commercialization, are significantly suppressed in O3-NaNFMMO cathode. This work establishes a universal design principle for high-performance NaxTMO2 cathodes and offers a scalable pathway toward practical, cost-effective SIBs.
KW - electron occupancy state
KW - layered oxide cathodes
KW - ligand-field splitting parameter (Δ)
KW - local oxygen coordination
KW - sodium-ion batteries
UR - https://www.scopus.com/pages/publications/105009206547
U2 - 10.1002/adfm.202509825
DO - 10.1002/adfm.202509825
M3 - Article
AN - SCOPUS:105009206547
SN - 1616-301X
VL - 35
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 51
M1 - e09825
ER -