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Polydopamine coated TiO nanofiber fillers for polyethylene oxide hybrid electrolytes for efficient and durable all solid state lithium ion batteries. | LitMetric

AI Article Synopsis

  • The polyethylene oxide (PEO) solid electrolyte is limited by low ionic conductivity and poor compatibility with lithium, affecting battery performance.
  • Novel TiO@polydopamine (PDA) fillers were developed, enhancing the PEO matrix and achieving higher ionic conductivity and a wider electrochemical window.
  • The resulting composite electrolyte demonstrates improved cycling stability and discharge capacities in lithium-ion batteries, making it a strong candidate for all solid-state applications.

Article Abstract

The polyethylene oxide (PEO) solid electrolyte is a promising candidate for all solid state lithium-ion batteries (ASSLIBs), but its low ionic conductivity and poor interfacial compatibility against lithium limit the rate and cycling performance of the cell. Herein, the novel and efficient TiO@polydopamine (PDA) fillers have been synthesized by coating PDA onto the surface of the TiO nanofibers, which are then incorporated into PEO matrices to form the composite electrolyte. The composite electrolyte displays a higher ionic conductivity of 4.36 × 10 S cm, a wider electrochemical window up to about 5 V and a higher of 0.190 at 55 °C compared to the PEO electrolyte. Additionally, the Li/composite electrolyte/Li batteries show a stable Li plating/stripping cycle performance, indicating good interfacial compatibility between the composite electrolyte and lithium. Thus, the LiFePO/Li ASSLIBs display a fantastic rate performance and cycling stability, and deliver superior discharge specific capacities of 153.83 and 136.45 mA h g at current densities of 0.5C and 2C, achieving good capacity retentions of 93.27% and 91.23% at 0.5C and 1C after 150 cycles, respectively. Therefore, the PEO-TiO@PDA composite electrolyte is a potential solid electrolyte for ASSLIBs.

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Source
http://dx.doi.org/10.1039/d1nr06636fDOI Listing

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