Enabling High Reversibility of Both Cationic and Anionic Redox in Layered Oxide Cathodes via NiMn <sub>6</sub> Superlattice Topology for Sodium‐Ion Batteries

Z Zhonghan Wu Y Youxuan Ni N Na Jiang J Jinhan Li (State Key Laboratory of Advanced Chemical Power Sources, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Engineering Research Center of High-efficiency Energy Storage (Ministry of Education), Frontiers Science Center for New Organic Matter (Ministry of Education), College of Chemistry) L Limin Zhou (School of Energy and Power Engineering) L Lunhua He L Liang Zhang K Kai Zhang F Fangyi Cheng (State Key Laboratory of Advanced Chemical Power Sources, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Engineering Research Center of High-efficiency Energy Storage (Ministry of Education), Frontiers Science Center for New Organic Matter (Ministry of Education), College of Chemistry) J Jun Chen

Abstract

Abstract High‐voltage oxygen anionic redox provides a transformative opportunity to achieve high energy density of batteries. However, it is challenging to guarantee the reversibility of both cationic and anionic redox for layered transition metal (TM) oxide cathode materials due to the high oxygen‐redox reactivity and the complex structural rearrangements. Herein, a honeycomb‐layered Na 0.78 Ni 0.12 Li 0.18 Mn 0.7 O 2 (NNLMO) cathode material with the NiMn 6 and LiMn 6 dual‐topology superlattice is proposed for sodium‐ion batteries. The theoretical and experimental studies demonstrate that the Ni 2+ electronic configuration serves as a redox buffer to tune the cationic and anionic redox activity by enlarging the energy gap between O 2 p and Mn 3 d orbitals, while the NiMn 6 topology renders the LiMn 6 topology delocalized in the TM layers to reinforce the superstructure stability through suppressing the intralayer Mn migration and O 2 formation. As a result, NNLMO delivers a highly reversible capacity of 224 mAh g −1 with the mitigated voltage hysteresis and exhibits remarkable capacity retention of 92.2% over 50 cycles within the wide voltage range of 1.5–4.5 V. The findings suggest a new insight into the topological superstructure design of high‐energy oxide cathode materials for sustainable batteries.

Article Details

Volume / Issue Vol. 37, Issue 27
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

Z

Zhonghan Wu

Y

Youxuan Ni

N

Na Jiang

J

Jinhan Li

State Key Laboratory of Advanced Chemical Power Sources, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Engineering Research Center of High-efficiency Energy Storage (Ministry of Education), Frontiers Science Center for New Organic Matter (Ministry of Education), College of Chemistry

L

Limin Zhou

School of Energy and Power Engineering

L

Lunhua He

L

Liang Zhang

K

Kai Zhang

F

Fangyi Cheng

State Key Laboratory of Advanced Chemical Power Sources, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Engineering Research Center of High-efficiency Energy Storage (Ministry of Education), Frontiers Science Center for New Organic Matter (Ministry of Education), College of Chemistry

J

Jun Chen