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Free-standing Li+-conductive films based on PEO-PVDF blends

机译:基于PEO-PVDF混合物的独立式Li + - 导电薄膜

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摘要

Solid electrolytes are of high interest for the development of advanced electrochemical energy storage devices with all-solid-state architectures. Here, we report the fabrication of the electrolyte membranes based on LiTFSI (LiN(CF3SO2)(2)) and PEO-PVDF blends with improved properties. We show that addition of PVDF enables preparation of free-standing films of the compositions within the so called "crystallinity gap" of the LiTFSI-PEO system known to provide high ion conductivity. We show that optimal PVDF content enables preparation of the films with reasonable elastic modulus and high ionic conductivity of about 0.3 mS cm(-1) at 60 degrees C and about 0.1 mS cm(-1) at room-temperature. Combining FTIR spectroscopy, XRD and DSC measurements we show that a noticeable fraction of PVDF remains crystalline and enhances the mechanical properties of the material, and at the same time it additionally promotes LiTFSI dissociation and disordering. Density functional theory calculations showed that the Li+-PEO-PVDF complexation energy magnitude is almost as high as that of Li-PEO complexes, thus the salt dissociation ability can be retained in spite of the introduction of the substantial amounts of PVDF required for mechanical stability.
机译:固体电解质对具有全固态架构的先进电化学能量存储装置的开发具有高兴趣。这里,我们报告基于LITFSI(LIN(CF3SO2)(2))和具有改进性质的PEO-PVDF共混物的制造。我们表明,添加PVDF的添加能够在已知的Litfsi-Peo系统的所谓“结晶性间隙”内的组合物的自卸式薄膜制备用于提供高离子电导率的所谓的“结晶性间隙”。我们表明,最佳的PVDF含量使得在室温下在60℃和约0.1mScm(-​​1)下具有合理的弹性模量和大约0.3ms cm(-1)的高离子电导率的薄膜。组合FTIR光谱,XRD和DSC测量结果表明,PVDF的明显分数保持结晶并增强材料的机械性能,同时它还促进了LITFSI解离和失调。密度函数理论计算表明,Li + -Peo-PVDF络合能量幅度几乎高于Li-Peo复合物的络合物,因此尽管引入了机械稳定性所需的大量PVDF,但可以保留盐解离能力。

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  • 来源
    《RSC Advances》 |2020年第27期|共7页
  • 作者单位

    NN Semenov Fed Res Ctr Chem Phys Lab Electrochem Energy Convers Kosygina Str 4 Moscow 119991 Russia;

    NN Semenov Fed Res Ctr Chem Phys Lab Electrochem Energy Convers Kosygina Str 4 Moscow 119991 Russia;

    Dubna State Univ Univ Skaya 19 Dubna 141982 Moscow Region Russia;

    Dubna State Univ Univ Skaya 19 Dubna 141982 Moscow Region Russia;

    FLNR Joint Inst Nucl Res Dubna 141980 Moscow Region Russia;

    NN Semenov Fed Res Ctr Chem Phys Lab Electrochem Energy Convers Kosygina Str 4 Moscow 119991 Russia;

    NN Semenov Fed Res Ctr Chem Phys Lab Electrochem Energy Convers Kosygina Str 4 Moscow 119991 Russia;

    NN Semenov Fed Res Ctr Chem Phys Lab Electrochem Energy Convers Kosygina Str 4 Moscow 119991 Russia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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