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April 16, 2026Journal of Energy Storage0 citationsOpen Access

TiO₂-engineered polyurethane gel electrolyte enabling dendrite-free Na metal cycling and high-fidelity state estimation

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SLSilun LuoJLJuchen LiYLYuhan Li

Key Points

  • This research aims to create a gel polymer electrolyte that enhances sodium-ion battery performance while ensuring safety.
  • Incorporated 5 wt% TiO₂ nanoparticles into a thermoplastic polyurethane matrix.
  • Measured ionic conductivity and tensile strength of the TPU–TiO₂ gel electrolyte.
  • Evaluated cycling stability in symmetric and full-cell configurations.
  • Utilized a second-order RC equivalent circuit model combined with an extended Kalman filter for SOC estimation.
  • TPU–TiO₂ GPE exhibited 3× higher ionic conductivity and increased tensile strength compared to pristine TPU.
  • Stable cycling for over 250 hours at 0.2 mA·cm−2 in symmetric cells.
  • Full cells retained 93.84% capacity after 280 cycles at 0.5C.
  • Improved OCV–SOC characteristics reduced voltage-model fitting RMSE from 2.4 mV to 1.3 mV.

Abstract

Sodium-ion batteries (SIBs) are promising alternatives to lithium-ion batteries due to their low cost and abundant sodium resources; however, conventional liquid electrolytes suffer from safety issues and interfacial instability. Herein, a gel polymer electrolyte (TPU–TiO₂ GPE) was developed by incorporating 5 wt% TiO₂ nanoparticles into a thermoplastic polyurethane (TPU) matrix. The Lewis acidic centers of TiO₂ interact synergistically with polyurethane chain segments, reducing polymer crystallinity and enhancing chain mobility. As a result, the TPU–TiO₂ GPE exhibits higher room-temperature ionic conductivity (2.91 × 10 −4 S·cm −1 ) and tensile strength (32.7 MPa) than pristine TPU. Moreover, the TPU–TiO₂ GPE forms a stable and uniform solid–electrolyte interphase (SEI) on sodium metal, effectively suppressing dendrite growth. Na||Na symmetric cells demonstrate stable cycling for over 250 h at 0.2 mA·cm −2 , while Na||Na₃V₂(PO₄)₃ full cells retain 93.84% of their capacity after 280 cycles at 0.5C. The state of charge (SOC) of the full cells was estimated using a second-order RC equivalent circuit model combined with an extended Kalman filter (EKF). Compared with the pristine TPU system, the TPU–TiO₂ GPE exhibits smoother OCV–SOC characteristics and reduced polarization, leading to significantly improved SOC estimation accuracy. The voltage-model fitting RMSE is reduced from approximately 2.4 mV to 1.3 mV. This improvement enables more reliable SOC tracking across the entire SOC range. These results indicate that the TPU–TiO₂ GPE enhances both electrochemical performance and SOC predictability, providing a viable strategy for safe and intelligently managed sodium-ion batteries. • A TiO₂-modified TPU gel electrolyte achieves 3× higher ionic conductivity and improved strength. • TiO₂ incorporation improves Na + transport by reducing crystallinity and enhancing segmental mobility. • A stable and uniform SEI effectively suppresses Na dendrite growth, enabling >250 h symmetric-cell cycling. • Na||NVP full cells show 93.84% capacity retention after 280 cycles at 0.5C. • Improved OCV–SOC smoothness enables accurate SOC estimation under a 2RC–EKF framework.

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Cite This Study

Luo et al. (2026) studied this question.

synapsesocial.com/papers/69e07c1e2f7e8953b7cbd7achttps://doi.org/10.1016/j.est.2026.122171
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