Adv. Energy Mater.: Synergistic Rigidity–Flexibility Engineering of O3-Type Sodium Layered Oxide Cathodes Through Site-Specific High-Entropy Regulation

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Title:

Synergistic Rigidity–Flexibility Engineering of O3-Type Sodium Layered Oxide Cathodes Through Site-Specic High-Entropy Regulation

Authors:

Weidong Xu1, Chen Cheng1*, Lei Wang1, Tong Chen1, Zheng Zhou1, Tianran Yan1, Shiqi Shen1, Pan Zeng2, Liang Zhang1*

Institutions:

1Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University, Jiangsu Key Laboratory of Advanced Negative Carbon Technologies, Soochow University, Suzhou 215123, China.

2Institute for Advanced Study, School of Mechanical Engineering Chengdu University, Chengdu 610106, China

Abstract:

O3-type layered oxides have emerged as promising cathode materials for sodium-ion batteries (SIBs) owing to their high theoretical capacity and elemental abundance. However, complex phase transition and anisotropic lattice strain undermine their structural integrity and cycling stability. Herein, a site-specific high-entropy strategy is proposed that integrates the rigidity of Ca2+ in the alkali-metal (AM) layers and the flexibility of high-entropy multi-cation configurations in the transition-metal (TM) layers to synergistically enhance the electrochemical performance of O3-type NaNi0.5Mn0.5O2. The Ca2+ rigidity in the AM layers acts as a structural pillar, exerting a pinning effect that suppresses excessive TM slab gliding and stabilizes Na+ migration pathways. Simultaneously, the high-entropy flexibility in the TM layers, achieved through the random distribution of multiple cations, introduces adaptive local coordination environments that accommodate anisotropic lattice distortions and mitigate severe Jahn–Teller distortion of Ni3+O6 octahedra. This dual-layer regulation considerably increases the interlayer spacing ratio (dO-Na-O/dO-TM-O), which not only promotes a more moderate and reversible structural evolution but also improves Na+ diffusion kinetics during cycling. Therefore, the engineered cathode exhibits enhanced specific capacity and cycling stability in both half and full cells. This work offers a scalable strategy toward the development of high-performance SIBs for practical applications.

IF:

26

Link:

https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/aenm.202504557



Editor: Guo Jia

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