Holistic Inside‐Out Reconfiguration of Ni‐Rich Cathodes via a Thermally Self‐Driven Strategy for Exceptional Chemomechanical Stability

H Haixia Yu S Shucheng Xu (College of Physics College of Materials Science and Engineering Weihai Innovation Research Institute Qingdao University Qingdao China) H Hongyuan Song (Department of Ophthalmology, Shanghai Changhai Hospital, Naval Medical University) G Guihuan Chen (College of Physics Center For Marine Observation and Communications Qingdao University Qingdao China) Y Ying Jiang Z Zhonghan Song (College of Physics College of Materials Science and Engineering Weihai Innovation Research Institute Qingdao University Qingdao China) R Rizhen Sun (College of Physics College of Materials Science and Engineering Weihai Innovation Research Institute Qingdao University Qingdao China) Q Qinghao Li J Jun Zhou Y Yongfu Tang (State Key Laboratory of Metastable Materials Science and Technology) Y Yan He X Xiqian Yu (Beijing Frontier Research Center on Clean Energy) Q Qiang Li

Abstract

ABSTRACT Ni‐rich layered oxides (LiNi x Co y Mn 1− x − y O 2 , x ≥ 0.8) are indispensable for high‐energy‐density lithium‐ion batteries, yet they suffer from severe chemomechanical degradation driven by the synergy of internal microcracking and interfacial parasitic side reactions. Existing strategies inherently suffer from decoupled regulation of mechanical and chemical instabilities that fail to address these issues holistically. Here, we develop an inside‐out structural reconfiguration strategy driven by the thermal decomposition of nitrates, concurrently tailoring the core, bulk, and surface of NCM811 in a single calcination step. This reconstruction generates a stress‐buffering central pore architecture that effectively homogenizes anisotropic lattice strain and suppresses crack nucleation. Concurrently, the regulated Nd 3+ diffusion forms a coherent Nd 4 [LiNi]O 8 (NLNO) perovskite phase within the bulk lattice, creating a pinning effect that stabilizes the layered framework and enhances charge transport. Furthermore, excess Nd‐species evolve into a conformal NLNO surface coating, acting as a physical barrier and oxygen reservoir to resist electrolyte attack and oxygen evolution. The modified cathode delivers an exceptional capacity retention (95.7% after 200 cycles at 4.5 V) and exceptional rate capability (157.1 mAh g −1 at 5 C). Even under stringent conditions (4.6 V or 45°C), a superior retention of 87.8% is maintained after 200 cycles, demonstrating remarkable chemomechanical robustness.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 10, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

H

Haixia Yu

S

Shucheng Xu

College of Physics College of Materials Science and Engineering Weihai Innovation Research Institute Qingdao University Qingdao China

H

Hongyuan Song

Department of Ophthalmology, Shanghai Changhai Hospital, Naval Medical University

G

Guihuan Chen

College of Physics Center For Marine Observation and Communications Qingdao University Qingdao China

Y

Ying Jiang

Z

Zhonghan Song

College of Physics College of Materials Science and Engineering Weihai Innovation Research Institute Qingdao University Qingdao China

R

Rizhen Sun

College of Physics College of Materials Science and Engineering Weihai Innovation Research Institute Qingdao University Qingdao China

Q

Qinghao Li

J

Jun Zhou

Y

Yongfu Tang

State Key Laboratory of Metastable Materials Science and Technology

Y

Yan He

X

Xiqian Yu

Beijing Frontier Research Center on Clean Energy

Q

Qiang Li