Superlattice Engineering Stabilizes Bulk‐to‐Surface Microenvironment in Single‐Crystalline Ultrahigh‐Ni Cathodes

ABSTRACT Single‐crystalline ultrahigh‐Ni cathodes hold great promise for high‐energy Li‐ion batteries, but their practical adoption is hindered by sluggish delithiation kinetics and severe structural degradation. Although superlattice engineering has been established as an effective strategy to stabilize lattice oxygen and enhance Li‐ion diffusion in polycrystalline counterparts, realizing ordered Li/Ni anti‐site superlattices in micro‐sized single‐crystalline materials remains challenging, as their formation is largely restricted to the near‐surface region. Herein, we report for the first time the construction of a bulk‐locally‐pinned and surface‐even‐distributed ordered Li/Ni anti‐site superlattice structure in single‐crystalline ultrahigh‐Ni LiNi 0.93 Co 0.02 Mn 0.03 Al 0.02 O 2 cathodes via Mo‐induced local microenvironment regulation during high‐temperature lithiation. The resulting cathodes exhibit a 32% reduction in Li‐ion diffusion energy barrier, a 23% decrease in lattice oxygen loss, and a 26% suppression of c‐axis lattice contraction at 90% state of charge. Consequently, these improvements effectively alleviate stress concentration and substantially accelerate delithiation kinetics. The optimized cathode delivers an ultrahigh reversible capacity of 230 mAh g −1 at 0.1C and achieves a cycle life exceeding 4500 cycles in Ah‑level pouch‐type full cells.

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Journal
Advanced Materials
Published
2026-09-10
DOI
https://doi.org/10.1002/adma.74958
Primary Topic
Advancements in Battery Materials
Type
article
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Superlattice Engineering Stabilizes Bulk‐to‐Surface Microenvironment in Single‐Crystalline Ultrahigh‐Ni Cathodes

Chunzhong Li, Haoran Bian, Hao Jiang, Liyun Yao et al.
Advanced Materials
Advancements in Battery Materials
article

Superlattice Engineering Stabilizes Bulk‐to‐Surface Microenvironment in Single‐Crystalline Ultrahigh‐Ni Cathodes

Chunzhong Li, Haoran Bian, Hao Jiang, Liyun Yao, Jiajun Cai, Ling Chen, Haifeng Yu
article en

Abstract

ABSTRACT Single‐crystalline ultrahigh‐Ni cathodes hold great promise for high‐energy Li‐ion batteries, but their practical adoption is hindered by sluggish delithiation kinetics and severe structural degradation. Although superlattice engineering has been established as an effective strategy to stabilize lattice oxygen and enhance Li‐ion diffusion in polycrystalline counterparts, realizing ordered Li/Ni anti‐site superlattices in micro‐sized single‐crystalline materials remains challenging, as their formation is largely restricted to the near‐surface region. Herein, we report for the first time the construction of a bulk‐locally‐pinned and surface‐even‐distributed ordered Li/Ni anti‐site superlattice structure in single‐crystalline ultrahigh‐Ni LiNi 0.93 Co 0.02 Mn 0.03 Al 0.02 O 2 cathodes via Mo‐induced local microenvironment regulation during high‐temperature lithiation. The resulting cathodes exhibit a 32% reduction in Li‐ion diffusion energy barrier, a 23% decrease in lattice oxygen loss, and a 26% suppression of c‐axis lattice contraction at 90% state of charge. Consequently, these improvements effectively alleviate stress concentration and substantially accelerate delithiation kinetics. The optimized cathode delivers an ultrahigh reversible capacity of 230 mAh g −1 at 0.1C and achieves a cycle life exceeding 4500 cycles in Ah‑level pouch‐type full cells.

Advanced Materials
East China University of Science and Technology (CN), Xinjiang University (CN)
Responsible consumption and production
Openalex Percentile: Top 20%
Advancements in Battery Materials
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Superlattice Engineering Stabilizes Bulk‐to‐Surface Microenvironment in Single‐Crystalline Ultrahigh‐Ni Cathodes — Chunzhong Li, Haoran Bian, et al. · Advanced Materials (2026) | TGRS Research Map | TGRS