Trace Anion‐Receptor Chemistry for Stable Carbonate Electrolytes Toward Long‐Life Sodium Metal Batteries

ABSTRACT Sodium metal batteries (SMBs) offer a promising route toward cost‐effective energy storage, but their operation in carbonate electrolytes is limited by coupled NaPF 6 degradation and interfacial instability. Trace moisture triggers salt hydrolysis and HF formation, continuously disrupting SEI/CEI chemistry and aggravating nonuniform Na deposition. Here, lithium 4,5‐dicyano‐2‐(trifluoromethyl)imidazol‐1‐ide (LiTDI) is introduced as a trace anion‐receptor additive to stabilize NaPF 6 ‐based carbonate electrolytes. Spectroscopic analyses and theoretical calculations reveal that LiTDI preferentially scavenges H 2 O/HF to suppress hydrolysis, while its electron‐rich N sites coordinate with PF 6 − to weaken Na + ‐anion coupling and reconstruct the solvation sheath, reducing aggregated ion pairs from 18.3% to 7.2%. Meanwhile, LiTDI‐derived interfacial reactions promote the formation of a NaF/Na 3 N‐rich SEI on Na metal and a compact F/N‐enriched CEI on cathodes, enabling homogeneous Na deposition and reduced interfacial polarization. As a result, Na||Na symmetric cells with 0.1% LiTDI achieve stable cycling for 400 h at 1 mA cm −2 , while the Na + transference number increases from 0.417 to 0.603. Na||Na 3 V 2 (PO 4 ) 3 full cells achieve exceptional durability with 80.36% capacity retention after 2000 cycles at 1 C, with a stabilized Coulombic efficiency of 99.87%. This work establishes a multifunctional anion‐receptor strategy for stabilizing NaPF 6 ‐based carbonate electrolytes and provides a practical avenue toward high‐durability SMBs.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-08-31
DOI
https://doi.org/10.1002/adfm.77968
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Trace Anion‐Receptor Chemistry for Stable Carbonate Electrolytes Toward Long‐Life Sodium Metal Batteries

Yejing Li, Yong Jiang, Jiujun Zhang, Wenrong Li et al.
Advanced Functional Materials
Advanced Battery Materials and Technologies
article

Trace Anion‐Receptor Chemistry for Stable Carbonate Electrolytes Toward Long‐Life Sodium Metal Batteries

Yejing Li, Yong Jiang, Jiujun Zhang, Wenrong Li, Meng Li, Bing Zhao, Jiayi Wang, Jinlong Jiang, Ying Chen
article en

Abstract

ABSTRACT Sodium metal batteries (SMBs) offer a promising route toward cost‐effective energy storage, but their operation in carbonate electrolytes is limited by coupled NaPF 6 degradation and interfacial instability. Trace moisture triggers salt hydrolysis and HF formation, continuously disrupting SEI/CEI chemistry and aggravating nonuniform Na deposition. Here, lithium 4,5‐dicyano‐2‐(trifluoromethyl)imidazol‐1‐ide (LiTDI) is introduced as a trace anion‐receptor additive to stabilize NaPF 6 ‐based carbonate electrolytes. Spectroscopic analyses and theoretical calculations reveal that LiTDI preferentially scavenges H 2 O/HF to suppress hydrolysis, while its electron‐rich N sites coordinate with PF 6 − to weaken Na + ‐anion coupling and reconstruct the solvation sheath, reducing aggregated ion pairs from 18.3% to 7.2%. Meanwhile, LiTDI‐derived interfacial reactions promote the formation of a NaF/Na 3 N‐rich SEI on Na metal and a compact F/N‐enriched CEI on cathodes, enabling homogeneous Na deposition and reduced interfacial polarization. As a result, Na||Na symmetric cells with 0.1% LiTDI achieve stable cycling for 400 h at 1 mA cm −2 , while the Na + transference number increases from 0.417 to 0.603. Na||Na 3 V 2 (PO 4 ) 3 full cells achieve exceptional durability with 80.36% capacity retention after 2000 cycles at 1 C, with a stabilized Coulombic efficiency of 99.87%. This work establishes a multifunctional anion‐receptor strategy for stabilizing NaPF 6 ‐based carbonate electrolytes and provides a practical avenue toward high‐durability SMBs.

Advanced Functional Materials
Shanghai University (CN), University of Shanghai for Science and Technology (CN), Fuzhou University (CN)
Natural Science Foundation of Shanghai, National Natural Science Foundation of China, China Postdoctoral Science Foundation
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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