In Situ Phosphoester Polymer Layer Locking Oxygen Migration in Ni‐Rich Cathodes Under Ultra‐High Voltage

Y Yue Pan (Beijing National Laboratory for Condensed Matter Physics) C Cong‐Zheng Chai (Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) Y Ya‐Hui Wang (Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) Z Zhan‐Peng Wang (Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) M Ming‐Hang Li (Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) H Haizhou Liu Z Zhi‐Wei Yuan (Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) S Shuang‐Yan Lang (Key Laboratory of Molecular Nanostructure and Nanotechnology Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing 100190 P.R. China) Y Yu‐Guo Guo (CAS Key Laboratory of Molecular Nanostructure and Nanotechnology Beijing National Laboratory For Molecular Sciences (BNLMS) Institute of Chemistry Chinese Academy of Sciences (CAS) Beijing P. R. China) C Chunli Bai (Beijing National Laboratory for Molecular Sciences, Key Laboratory of Molecular Nanostructure and Nanotechnology, Institute of Chemistry, Chinese Academy of Sciences) Y Ying Zhang

Abstract

ABSTRACT Raising the cutoff voltage of nickel‐rich layered cathodes is an effective strategy to increase the energy density of lithium batteries, yet it markedly aggravates structural degradation and gas evolution driven by lattice oxygen instability. Under diffusion‐limited conditions, the separator‐adjacent electrode region undergoes preferential over‐delithiation, serving as the primary initiation site for oxygen‐induced chemo‐mechanical failure. Here, we report an in situ formed phosphoester‐derived polymer interlayer on LiNi 0 . 8 Co 0 . 1 Mn 0 . 1 O 2 electrodes that operates via a synergistic chemical–physical oxygen migration locking mechanism. Chemically, the phosphorus‐containing polymer stabilizes lattice oxygen through robust metal–oxygen–phosphorus coordination, increasing the oxygen‐vacancy formation energy by 0.61 eV compared with pristine LiNi 0 . 8 Co 0 . 1 Mn 0 . 1 O 2 . Physically, the crosslinked polymer network regulates oxygen transport and captures evolved oxygen species, thereby mitigating parasitic reactions. This dual‐function interlayer suppresses gas evolution, reduces strain accumulation, and stabilizes bulk structural integrity under ultra‐high‐voltage operation. Consequently, the modified cathode delivers 81.5% capacity retention after 100 cycles at 1 C under 4.6 V, which is an improvement of 25.3% over the pristine counterpart, and enables stable cycling of a 3.2 Ah pouch full cell. This scalable in situ interfacial strategy provides an effective pathway to suppress oxygen‐related degradation in Ni‐rich cathodes, advancing safer and higher‐energy lithium batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published April 21, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

Y

Yue Pan

Beijing National Laboratory for Condensed Matter Physics

C

Cong‐Zheng Chai

Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

Y

Ya‐Hui Wang

Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

Z

Zhan‐Peng Wang

Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

M

Ming‐Hang Li

Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

H

Haizhou Liu

Z

Zhi‐Wei Yuan

Beijing National Laboratory For Molecular Sciences Key Laboratory of Molecular Nanostructure and Nanotechnology Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

S

Shuang‐Yan Lang

Key Laboratory of Molecular Nanostructure and Nanotechnology Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing 100190 P.R. China

Y

Yu‐Guo Guo

CAS Key Laboratory of Molecular Nanostructure and Nanotechnology Beijing National Laboratory For Molecular Sciences (BNLMS) Institute of Chemistry Chinese Academy of Sciences (CAS) Beijing P. R. China

C

Chunli Bai

Beijing National Laboratory for Molecular Sciences, Key Laboratory of Molecular Nanostructure and Nanotechnology, Institute of Chemistry, Chinese Academy of Sciences

Y

Ying Zhang