Decoupled Synthesis Pathway via Precursor Functionalization Stabilizes High‐Voltage Nickel‐Based Cathodes

ABSTRACT Nickel‐based layered cathodes are promising candidates for high‐performance, high‐energy lithium‐ion batteries, yet their high‐voltage application is jointly limited by synthesis‐inherited structural defects and an unstable lattice oxygen framework. Here, we show that both limitations can be overcome by decoupled synthesis pathway (DSP) via La/Nb oxalate functionalization of the Ni 0.6 Co 0.1 Mn 0.3 (OH) 2 precursor. Unlike the conventional coupled synthesis pathway (CSP) where precursor dehydration and Li 2 CO 3 decomposition overlap in temperature, the DSP introduces a low‑temperature decomposition of La/Nb oxalates at 200°C, which effectively avoids localized contact between the precursor and Li 2 CO 3 and shifts Li 2 CO 3 ‐related reactions to high temperatures. This allows sequential precursor dehydroxylation, rock‑salt (RS) intermediate formation, and layered‑phase transformation over a broad temperature window. The resulting LiNi 0.6 Co 0.1 Mn 0.3 O 2 cathode with La/Nb functionalization (NCM‐LN) features a uniform surface LaNiO 3 perovskite heterostructure and a Nb‑doped layered bulk with suppressed RS and spinel defects. Consequently, under 4.5 V operation (vs. Li + /Li), NCM‐LN exhibits homogeneous Li + (de)intercalation, and a stabilized oxygen framework. In graphite||NCM‐LN full cells, NCM‐LN retains 80.1% of its capacity after 2000 cycles at 1C, substantially outperforming the pristine cathode. This decoupling strategy is broadly effective across various Ni‑based systems, providing a generalizable route toward high‑energy, long‑life cathode materials.

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Publication Details

Journal
Advanced Materials
Published
2026-09-05
DOI
https://doi.org/10.1002/adma.74909
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Decoupled Synthesis Pathway via Precursor Functionalization Stabilizes High‐Voltage Nickel‐Based Cathodes

Zhongzhe Li, Hengyu Ren, Feng Pan, Zijin Xu et al.
Advanced Materials
Advancements in Battery Materials
article

Decoupled Synthesis Pathway via Precursor Functionalization Stabilizes High‐Voltage Nickel‐Based Cathodes

Zhongzhe Li, Hengyu Ren, Feng Pan, Zijin Xu, Weiyuan Huang, Haocheng Ji, Qinghe Zhao, Qinghao Lai, Zizheng Tong, Bowen Nan, Hui Chen, Zhaoyao Zhan, Jiajie Liu, Haocong Yi, Shiming Chen, Wenzhe Bao, Funing Yu, Xiaohu Wang, Wenguang Zhao, Chunyu Xu, Tao Zeng
article en

Abstract

ABSTRACT Nickel‐based layered cathodes are promising candidates for high‐performance, high‐energy lithium‐ion batteries, yet their high‐voltage application is jointly limited by synthesis‐inherited structural defects and an unstable lattice oxygen framework. Here, we show that both limitations can be overcome by decoupled synthesis pathway (DSP) via La/Nb oxalate functionalization of the Ni 0.6 Co 0.1 Mn 0.3 (OH) 2 precursor. Unlike the conventional coupled synthesis pathway (CSP) where precursor dehydration and Li 2 CO 3 decomposition overlap in temperature, the DSP introduces a low‑temperature decomposition of La/Nb oxalates at 200°C, which effectively avoids localized contact between the precursor and Li 2 CO 3 and shifts Li 2 CO 3 ‐related reactions to high temperatures. This allows sequential precursor dehydroxylation, rock‑salt (RS) intermediate formation, and layered‑phase transformation over a broad temperature window. The resulting LiNi 0.6 Co 0.1 Mn 0.3 O 2 cathode with La/Nb functionalization (NCM‐LN) features a uniform surface LaNiO 3 perovskite heterostructure and a Nb‑doped layered bulk with suppressed RS and spinel defects. Consequently, under 4.5 V operation (vs. Li + /Li), NCM‐LN exhibits homogeneous Li + (de)intercalation, and a stabilized oxygen framework. In graphite||NCM‐LN full cells, NCM‐LN retains 80.1% of its capacity after 2000 cycles at 1C, substantially outperforming the pristine cathode. This decoupling strategy is broadly effective across various Ni‑based systems, providing a generalizable route toward high‑energy, long‑life cathode materials.

Advanced Materials
Fujian Normal University (CN), Guangdong University of Technology (CN), Chinese University of Hong Kong (HK), Shenzhen Polytechnic University (CN), Peking University (CN), Cell Technology (China) (CN), Tsinghua–Berkeley Shenzhen Institute (CN), Peking University Shenzhen Hospital (CN), University of Hong Kong (HK), South China University of Technology (CN)
China Postdoctoral Science Foundation
Affordable and clean energy
Openalex Percentile: Top 19%
Advancements in Battery Materials
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