TY - JOUR
T1 - Cross-site lattice coordination modulates interfacial stability and ion transport behavior in sodium-ion cathode materials
AU - Lian, Zhiyue
AU - Xue, Haitao
AU - Shi, Xudong
AU - Liu, Qi
AU - Zhang, Yongqiang
AU - He, Wenxiu
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/11/5
Y1 - 2026/11/5
N2 - P2‑type Na0.67Fe0.5Mn0.5O2 cathodes often suffer from slow Na+ diffusion and interfacial instability, limiting their electrochemical performance. Here, a Cu/Ca co-doping strategy was developed to simultaneously enhance structural stability and Na+ transport. In the designed Na0.65Fe0.3Mn0.5Cu0.2Ca0.02O2 (NFMCC) cathode, Cu2+ occupies the transition-metal layer, modulating the local electronic structure and suppressing Jahn-Teller distortion. DFT calculations show that Ca2+ preferentially occupies the Na layer, acting as a pillar to stabilize the framework and widen Na⁺ diffusion channels. Electrochemical tests indicate accelerated Na+ diffusion and reduced interfacial polarization. The optimized NFMCC delivers a discharge capacity of 158.4 mAh·g−1 at 20 mA·g−1 and retains 80.4% capacity after 500 cycles at 1000 mA·g−1. The full cell NFMCC//HC achieves an energy density of 279.8 Wh·kg−1 at 84.3 W·kg−1. These results demonstrate that Cu/Ca co-doping effectively improves both the structural and electrochemical performance of P2 cathodes, providing a promising strategy for designing high-stability, high-performance sodium-ion battery cathodes.
AB - P2‑type Na0.67Fe0.5Mn0.5O2 cathodes often suffer from slow Na+ diffusion and interfacial instability, limiting their electrochemical performance. Here, a Cu/Ca co-doping strategy was developed to simultaneously enhance structural stability and Na+ transport. In the designed Na0.65Fe0.3Mn0.5Cu0.2Ca0.02O2 (NFMCC) cathode, Cu2+ occupies the transition-metal layer, modulating the local electronic structure and suppressing Jahn-Teller distortion. DFT calculations show that Ca2+ preferentially occupies the Na layer, acting as a pillar to stabilize the framework and widen Na⁺ diffusion channels. Electrochemical tests indicate accelerated Na+ diffusion and reduced interfacial polarization. The optimized NFMCC delivers a discharge capacity of 158.4 mAh·g−1 at 20 mA·g−1 and retains 80.4% capacity after 500 cycles at 1000 mA·g−1. The full cell NFMCC//HC achieves an energy density of 279.8 Wh·kg−1 at 84.3 W·kg−1. These results demonstrate that Cu/Ca co-doping effectively improves both the structural and electrochemical performance of P2 cathodes, providing a promising strategy for designing high-stability, high-performance sodium-ion battery cathodes.
KW - Ca/Cu co-doping
KW - Electrochemical kinetics
KW - Interface stability
KW - Na+ diffusion kinetics
KW - P2-type sodium-ion batteries
UR - https://www.scopus.com/pages/publications/105042485243
U2 - 10.1016/j.colsurfa.2026.141077
DO - 10.1016/j.colsurfa.2026.141077
M3 - Article
AN - SCOPUS:105042485243
SN - 0927-7757
VL - 748
JO - Colloids and Surfaces A: Physicochemical and Engineering Aspects
JF - Colloids and Surfaces A: Physicochemical and Engineering Aspects
M1 - 141077
ER -