Molecular Tailoring of Succinonitrile Reshapes Na + Solvation and Interfacial Chemistry in High-Voltage Solid-State Polymer Electrolytes for Sodium Metal Batteries

Abstract Solid-state polymer electrolytes based on poly(ethylene oxide) are pivotal for high-safety, high-energy-density sodium metal batteries, yet suffer from inadequate room-temperature ionic conductivity and unstable electrode interfaces. Here, molecular tailoring of succinonitrile yields a novel plasticizer (SGa) featuring retained amide groups and a stable gauche conformation. This design suppresses the plasticizer self-aggregation within the poly(ethylene oxide) matrix, enhances polymer chain interactions, and optimizes Na+ solvation structures. Consequently, the resultant SPE achieves a high ionic conductivity of 0.352 mS cm–1 and a Na+ transference number of 0.71. Molecular dynamics simulations reveal that SGa weakens strong Na+ coordination while anchoring TFSI– anions, establishing a Na+-dominated fast conduction network. Crucially, the modified SPE induces a uniform, robust solid electrolyte interphase enriched in inorganic Na3N, significantly stabilizing the Na anode. Na3V2(PO4)3|SPE|Na cell delivers 90.6% capacity retention after 1500 cycles at 1 C (versus 485 cycles for the pristine system) and exhibits superior rate capability (61.42 mAh g–1 at 4 C) alongside high-voltage tolerance up to 4.5 V. Beyond addressing critical bottlenecks in sodium metal batteries, this work demonstrates the effectiveness of molecular customization in designing high-performance polymer electrolytes.

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Publication Details

Journal
ACS Nano
Published
2026-10-01
DOI
https://doi.org/10.1021/acsnano.6c11895
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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Molecular Tailoring of Succinonitrile Reshapes Na + Solvation and Interfacial Chemistry in High-Voltage Solid-State Polymer Electrolytes for Sodium Metal Batteries

Hu Fu, Hongming Zhou, Yuping Wu, Qinran Zhang et al.
ACS Nano
Advanced Battery Materials and Technologies
article

Molecular Tailoring of Succinonitrile Reshapes Na + Solvation and Interfacial Chemistry in High-Voltage Solid-State Polymer Electrolytes for Sodium Metal Batteries

Hu Fu, Hongming Zhou, Yuping Wu, Qinran Zhang, Bolin Li, Haichen Li, Wenyu Xu, Zhirong Chen
article en

Abstract

Abstract Solid-state polymer electrolytes based on poly(ethylene oxide) are pivotal for high-safety, high-energy-density sodium metal batteries, yet suffer from inadequate room-temperature ionic conductivity and unstable electrode interfaces. Here, molecular tailoring of succinonitrile yields a novel plasticizer (SGa) featuring retained amide groups and a stable gauche conformation. This design suppresses the plasticizer self-aggregation within the poly(ethylene oxide) matrix, enhances polymer chain interactions, and optimizes Na+ solvation structures. Consequently, the resultant SPE achieves a high ionic conductivity of 0.352 mS cm–1 and a Na+ transference number of 0.71. Molecular dynamics simulations reveal that SGa weakens strong Na+ coordination while anchoring TFSI– anions, establishing a Na+-dominated fast conduction network. Crucially, the modified SPE induces a uniform, robust solid electrolyte interphase enriched in inorganic Na3N, significantly stabilizing the Na anode. Na3V2(PO4)3|SPE|Na cell delivers 90.6% capacity retention after 1500 cycles at 1 C (versus 485 cycles for the pristine system) and exhibits superior rate capability (61.42 mAh g–1 at 4 C) alongside high-voltage tolerance up to 4.5 V. Beyond addressing critical bottlenecks in sodium metal batteries, this work demonstrates the effectiveness of molecular customization in designing high-performance polymer electrolytes.

ACS Nano
Central South University (CN)
Affordable and clean energy
Openalex Percentile: Top 22%
Advanced Battery Materials and Technologies
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Molecular Tailoring of Succinonitrile Reshapes Na + Solvation and Interfacial Chemistry in High-Voltage Solid-State Polymer Electrolytes for Sodium Metal Batteries — Hu Fu, Hongming Zhou, et al. · ACS Nano (2026) | TGRS Research Map | TGRS