4.6 Article

A versatile nano-TiO2 decorated gel separator with derived multi-scale nanofibers towards dendrite-blocking and polysulfide-inhibiting lithium-metal batteries

期刊

JOURNAL OF ENERGY CHEMISTRY
卷 55, 期 -, 页码 190-201

出版社

ELSEVIER
DOI: 10.1016/j.jechem.2020.07.015

关键词

Versatile gel polymer electrolyte; Multi-scale nanofibers; Thermostability; Dendrite-blocking and polysulfide-inhibiting; Lithium-metal batteries

资金

  1. National Natural Science Foundation of China [51678411]
  2. National Key Technology RD Program [2016YFB0303300]
  3. Science and Technology Plans of Tianjin [19PTSYJC00010, 18PTSYJC00180]

向作者/读者索取更多资源

The study developed a versatile fluorine-bearing gel membrane with multi-scale nanofibers through blend electrospinning of nano-TiO2 particles and fluorinated PMIA polymer. The membrane showed high porosity, superior affinity to electrolyte, and active sites for accelerated lithium ion migration. Additionally, the membrane exhibited outstanding heat-resistance, well-distributed lithium ions flux, and strong skeleton support for high-security and dendrite-proof batteries.
In this study, a versatile fluorine-bearing gel membrane with multi-scale nanofibers was rationally designed and synthesized via facile one-step blend electrospinning of nano-titanium dioxide (TiO2) particles and fluorinated poly-m-phenyleneisophthalamide (PMIA) polymer solution. The prepared multiscale TiO2-assisted gel separator presented relatively high porosity, small aperture, giving rise to superior affinity to electrolyte and sufficient active sites to accelerate lithium ions migration. Meanwhile, the as-fabricated multifunctional GPE also rendered outstanding heat-resistance and well-distributed lithiumions flux, and the mutual overlaps between the coarse fibers and the fine fibers within the multi-scale nanofiber membrane provided a strong skeleton support, which in turn laid a solid footing stone for high-security and dendrite-proof batteries. Particularly, the nano-TiO2 particles within PMIA membrane acted as gatekeepers, which can not only resist the growth of lithium dendrites, but also intercept the dissolved polysulfide on cathode side. Based on these merits, the gel PMIA-based lithium cobalt (LCO)/ lithium battery obtained the remarkably improved rate capability and cycle performances on account of superior ionic conductivity, steady anodic stability window and weakened polarization behavior. Meanwhile, the resultant lithium-sulfur cell also delivered the outstanding cycling stability with the aid of the greatly prevented shuttle effect of dissolved lithium polysulfides based on the physical trapping and chemical binding of the prepared GPE to polysulfides species. This work proved that the addition of functional inorganic nanoparticles similar with TiO2 in multi-scale gel PMIA membrane can enhance the lithium ions transport capability, resist the growth of lithium dendrites as well as inhibit the shuttle effect of polysulfides, which would prompt a great development for dendrite-blocking and polysulfide-inhibiting lithium-metal cells. (C) 2020 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.

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