Atomic-Scale Intergrowth Regulation Enables Long-Cycling Zero-Strain Sodium Layered Oxide Cathodes

Abstract P2-type layered oxide cathodes feature high median voltage and outstanding cycling stability, but their specific capacity of merely 80 mAh g–1 severely limits practical utility. Conventional P2/O3 biphasic strategies to boost capacity typically sacrifice structural stability or median voltage. In this work, density functional theory calculations identify the thermodynamic phase-ratio boundary for biphasic stability, confirming that limiting sodium-rich O3 phase below 20% suppresses the detrimental O3-P3 transition during cycling. Guided by this, precise transition metal tuning yields an optimal atomically intermixed P2/O3-93 cathode (Na3/4Ni1/3Fe1/12Mn7/12O2). It exhibits pronounced zero-strain behavior, with volume change reduced from 3.7% (O3-type reference) to <1%. It maintains a 3.3 V median voltage, raises capacity by 40% to 112 mAh g–1, and achieves 93% retention after 500 cycles at 1 C. Furthermore, it enables 300 stable cycles in all-solid-state sodium-ion batteries at 30 MPa, offering a viable route for high-performance layered oxide cathodes.

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Publication Details

Journal
ACS Energy Letters
Published
2026-09-08
DOI
https://doi.org/10.1021/acsenergylett.6c01278
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Atomic-Scale Intergrowth Regulation Enables Long-Cycling Zero-Strain Sodium Layered Oxide Cathodes

Jialong Shen, Yu Yao, Changxiang Guo, Xiaojun Wu et al.
ACS Energy Letters
Advancements in Battery Materials
article

Atomic-Scale Intergrowth Regulation Enables Long-Cycling Zero-Strain Sodium Layered Oxide Cathodes

Jialong Shen, Yu Yao, Changxiang Guo, Xiaojun Wu, Xianhong Rui, Yan Yu, Wei Jiang, Hai Yang, Zhen Li, Ling Li
article en

Abstract

Abstract P2-type layered oxide cathodes feature high median voltage and outstanding cycling stability, but their specific capacity of merely 80 mAh g–1 severely limits practical utility. Conventional P2/O3 biphasic strategies to boost capacity typically sacrifice structural stability or median voltage. In this work, density functional theory calculations identify the thermodynamic phase-ratio boundary for biphasic stability, confirming that limiting sodium-rich O3 phase below 20% suppresses the detrimental O3-P3 transition during cycling. Guided by this, precise transition metal tuning yields an optimal atomically intermixed P2/O3-93 cathode (Na3/4Ni1/3Fe1/12Mn7/12O2). It exhibits pronounced zero-strain behavior, with volume change reduced from 3.7% (O3-type reference) to <1%. It maintains a 3.3 V median voltage, raises capacity by 40% to 112 mAh g–1, and achieves 93% retention after 500 cycles at 1 C. Furthermore, it enables 300 stable cycles in all-solid-state sodium-ion batteries at 30 MPa, offering a viable route for high-performance layered oxide cathodes.

ACS Energy Letters
University of Science and Technology of China (CN), National Synchrotron Radiation Research Center (TW), National Synchrotron Radiation Laboratory (CN), Yulin University (CN)
National Natural Science Foundation of China, Chinese Academy of Sciences, Yulin University, Fundamental Research Funds for the Central Universities, Dalian National Laboratory for Clean Energy
Affordable and clean energy
Openalex Percentile: Top 20%
Advancements in Battery Materials
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