Electrolyte Design Resisting Anionic Redox‐Induced Oxygen Attacks for Robust Layered Sodium Cathodes

ABSTRACT Anionic redox reactions (ARR) are an effective strategy to enhance the reversible capacity of layered oxide cathode materials, thereby enabling high‐energy‐density sodium‐ion batteries (SIBs). However, ARR generates highly reactive and unstable oxygen species that may trigger nucleophilic attacks and compromise cathode–electrolyte interface (CEI) stability, causing structural degradation and rapid capacity fading. In this study, we introduce dimethyl 2‐fluoromalonate (2MDF) as a multifunctional cosolvent into a conventional carbonate electrolyte to stabilize ARR in Na 0.67 Li 0.24 Mn 0.64 Mg 0.06 Ti 0.06 O 2 (NLMMT) cathode. 2MDF, characterized by its low coordination ability, preferential oxidation characteristics, and fluorinated ester groups, simultaneously modulates Na + solvation, promotes formation of a robust inorganic‐rich CEI, and suppresses nucleophilic attack by reactive oxygen species. Density functional theory calculations and electrochemical analyses reveal that 2MDF forms weaker interactions with reactive oxygen species than conventional carbonates, enabling superior interfacial stability and preferential sacrificial oxidation. Consequently, the NLMMT cathode exhibits a high reversible capacity of 255.3 mAh g −1 at 20 mA g −1 and outstanding cycling stability, retaining 72% capacity after 400 cycles at 400 mA g −1 in the voltage range of 1.5–4.5 V. This study establishes a rational electrolyte design strategy that balances oxidative stability and nucleophilic resistance, providing general guidance for achieving reversible ARR in high‐energy SIBs.

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Publication Details

Journal
Advanced Materials
Published
2026-09-16
DOI
https://doi.org/10.1002/adma.74979
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Electrolyte Design Resisting Anionic Redox‐Induced Oxygen Attacks for Robust Layered Sodium Cathodes

Shi Xue Dou, Xiaozhong Wu, Pengfei Zhou, Jin Zhou et al.
Advanced Materials
Advancements in Battery Materials
article

Electrolyte Design Resisting Anionic Redox‐Induced Oxygen Attacks for Robust Layered Sodium Cathodes

Shi Xue Dou, Xiaozhong Wu, Pengfei Zhou, Jin Zhou, Junying Weng, Xunzhu Zhou, Lin Li, Jiazhao Wang, Honghe Yu, Shaozheng Tian, Huanhuan Dong
article en

Abstract

ABSTRACT Anionic redox reactions (ARR) are an effective strategy to enhance the reversible capacity of layered oxide cathode materials, thereby enabling high‐energy‐density sodium‐ion batteries (SIBs). However, ARR generates highly reactive and unstable oxygen species that may trigger nucleophilic attacks and compromise cathode–electrolyte interface (CEI) stability, causing structural degradation and rapid capacity fading. In this study, we introduce dimethyl 2‐fluoromalonate (2MDF) as a multifunctional cosolvent into a conventional carbonate electrolyte to stabilize ARR in Na 0.67 Li 0.24 Mn 0.64 Mg 0.06 Ti 0.06 O 2 (NLMMT) cathode. 2MDF, characterized by its low coordination ability, preferential oxidation characteristics, and fluorinated ester groups, simultaneously modulates Na + solvation, promotes formation of a robust inorganic‐rich CEI, and suppresses nucleophilic attack by reactive oxygen species. Density functional theory calculations and electrochemical analyses reveal that 2MDF forms weaker interactions with reactive oxygen species than conventional carbonates, enabling superior interfacial stability and preferential sacrificial oxidation. Consequently, the NLMMT cathode exhibits a high reversible capacity of 255.3 mAh g −1 at 20 mA g −1 and outstanding cycling stability, retaining 72% capacity after 400 cycles at 400 mA g −1 in the voltage range of 1.5–4.5 V. This study establishes a rational electrolyte design strategy that balances oxidative stability and nucleophilic resistance, providing general guidance for achieving reversible ARR in high‐energy SIBs.

Advanced Materials
Shandong University of Technology (CN), Wenzhou University (CN), University of Shanghai for Science and Technology (CN), University of Wollongong (AU), Nankai University (CN)
National Natural Science Foundation of China, Natural Science Foundation of Shandong Province, Science and Technology Plan Project of Wenzhou, China, Natural Science Foundation of Zhejiang Province
Openalex Percentile: Top 20%
Advancements in Battery Materials
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