TY - JOUR
T1 - Moderately cross-linked sulfonate ester functionalized poly(1,3-dioxolane) electrolyte toward stable long-cycling wide-temperature sodium-ion batteries
AU - Li, Yana
AU - Shen, Yixing
AU - Xu, Jipeng
AU - Chen, Suli
AU - Guo, Jun Hong
AU - Zhao, Shuzhi
AU - Li, Mengjie
AU - Zhang, Jiawen
AU - Jin, Haizu
AU - Che, Haiying
AU - Li, Jingkun
AU - He, Qinggang
AU - Song, Yongyi
AU - Ouyang, Chuying
AU - Lu, Jun
AU - Ma, Zi Feng
N1 - Publisher Copyright:
Copyright © 2026. Published by Elsevier B.V.
PY - 2026/8
Y1 - 2026/8
N2 - Sodium-ion batteries are promising candidates for large-scale energy storage applications. Nevertheless, conventional linear poly(1,3-dioxolane) (PDOL)-based electrolytes suffer from severe chain degradation, poor low-temperature ion conduction and unstable electrode interfacial properties, which severely limit their practical commercialization. Herein, ethylene sulfate and pentaerythritol bis(cyclic sulfate) are employed as functional modifiers to construct a three-dimensional cross-linked A2-DTD-TDT polymer electrolyte. The sulfonate ester groups work synergistically with Al³⁺ to regulate ring-opening polymerization, forming stable network architecture that effectively restrains structural deterioration and recrystallization at low temperature. The optimized electrolyte achieves a high ionic conductivity of 0.76 mS cm−1 and a high Na⁺ transference number of 0.89 at -20 °C, with an expanded electrochemical stability window up to 4.79 V, and enables stable Na⁺ transport and electrode-electrolyte interfaces across a wide temperature range of -40 to 55 °C. Benefiting from optimized solvation configuration and robust inorganic-rich SEI film, the assembled Na||Na symmetric cells achieve stable cycling for >6000 h at -40 °C. This work proposes a reliable modification strategy for developing wide-temperature and high-performance PDOL-based polymer electrolytes, and provides new insights into the structure-performance relationship of advanced sodium-ion battery electrolytes.
AB - Sodium-ion batteries are promising candidates for large-scale energy storage applications. Nevertheless, conventional linear poly(1,3-dioxolane) (PDOL)-based electrolytes suffer from severe chain degradation, poor low-temperature ion conduction and unstable electrode interfacial properties, which severely limit their practical commercialization. Herein, ethylene sulfate and pentaerythritol bis(cyclic sulfate) are employed as functional modifiers to construct a three-dimensional cross-linked A2-DTD-TDT polymer electrolyte. The sulfonate ester groups work synergistically with Al³⁺ to regulate ring-opening polymerization, forming stable network architecture that effectively restrains structural deterioration and recrystallization at low temperature. The optimized electrolyte achieves a high ionic conductivity of 0.76 mS cm−1 and a high Na⁺ transference number of 0.89 at -20 °C, with an expanded electrochemical stability window up to 4.79 V, and enables stable Na⁺ transport and electrode-electrolyte interfaces across a wide temperature range of -40 to 55 °C. Benefiting from optimized solvation configuration and robust inorganic-rich SEI film, the assembled Na||Na symmetric cells achieve stable cycling for >6000 h at -40 °C. This work proposes a reliable modification strategy for developing wide-temperature and high-performance PDOL-based polymer electrolytes, and provides new insights into the structure-performance relationship of advanced sodium-ion battery electrolytes.
KW - Polymer electrolytes
KW - Sodium ion batteries
KW - Wide temperature range
UR - https://www.scopus.com/pages/publications/105047064343
U2 - 10.1016/j.ensm.2026.105454
DO - 10.1016/j.ensm.2026.105454
M3 - Article
AN - SCOPUS:105047064343
SN - 2405-8297
VL - 90
JO - Energy Storage Materials
JF - Energy Storage Materials
M1 - 105454
ER -