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In Situ Synthesis of a Hierarchical All-Solid-State Electrolyte Based on Nitrile Materials for High-Performance Lithium-Ion Batteries

机译:基于腈材料的高性能锂离子电池分层全固态电解质的原位合成

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摘要

A hierarchical all-solid-state electrolyte based on nitrile materials (SEN) is prepared via in situ synthesis method. This hierarchical structure is fabricated by in situ polymerizing the cyanoethyl polyvinyl alcohol (PVA-CN) in succinonitrile (SN)-based solid electrolyte that is filled in the network of polyacrylonitrile (PAN)-based electrospun fiber membrane. The crosslinked PVA-CN polymer framework is uniformly dispersed in the SN-based solid electrolyte, which can strongly enhance its mechanical strength and keeps it in a quasi-solid state even over the melting point. The electrospun fiber membrane efficiently reduces the thickness of SEN film besides a further improvement in strength. Because of the unique hierarchical structure and structure similarity among the raw materials, the prepared SEN film exhibits high room-temperature ionic conductance (0.30 S), high lithium ion transference number (0.57), favorable mechanical strength (15.31 MPa), excellent safety, and good flexibility. Furthermore, the in situ synthesis ensures an excellent adhesion between SEN and electrodes, which leads to an outstanding electrochemical performance for the assembled LiFePO4/SEN/Li cells. Both the superior performance of SEN and the simple fabricating process of SEN-based all-solid-state cells make it potentially as one of the most promising electrolyte materials for next generation lithium-ion batteries.
机译:通过原位合成方法制备了一种基于腈材料的分层全固态电解质。这种分层结构是通过将氰基乙基聚乙烯醇(PVA-CN)在基于丁腈(SN)的固体电解质中原位聚合而制成的,该电解质填充在基于聚丙烯腈(PAN)的电纺纤维膜的网络中。交联的PVA-CN聚合物骨架均匀地分散在SN基固体电解质中,可以极大地增强其机械强度,甚至在熔点下也能保持准固态。除了进一步提高强度外,电纺纤维膜还有效地减少了SEN膜的厚度。由于原料之间独特的层次结构和结构相似性,所制得的SEN膜具有较高的室温离子电导率(0.30 S),较高的锂离子转移数(0.57),良好的机械强度(15.31 MPa),优异的安全性,和良好的灵活性。此外,原位合成可确保SEN与电极之间的优异粘合性,从而为组装的LiFePO4 / SEN / Li电池带来出色的电化学性能。 SEN的卓越性能和基于SEN的全固态电池的简单制造工艺都使其有可能成为下一代锂离子电池最有希望的电解质材料之一。

著录项

  • 来源
    《Advanced energy materials》 |2015年第15期|1-11|共11页
  • 作者单位

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Laboratory of Advanced Materials School of Materials Science and Engineering Tsinghua University Beijing P. R. China;

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Laboratory of Advanced Materials School of Materials Science and Engineering Tsinghua University Beijing P. R. China;

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Laboratory of Advanced Materials School of Materials Science and Engineering Tsinghua University Beijing P. R. China;

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Engineering Laboratory for the Next Generation Power and Energy Storage Batteries and Engineering Laboratory for Functionalized Carbon Materials Graduate School at Shenzhen Tsinghua University Shenzhen P. R. China;

    Laboratory of Advanced Materials School of Materials Science and Engineering Tsinghua University Beijing P. R. China;

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

    all-solid-state electrolytes; cyanoethyl polyvinyl alcohol; electrospun fiber membranes; in situ synthesis; succinonitrile; batteries;

    机译:全固态电解质氰乙基聚乙烯醇电纺丝膜原位合成琥珀腈电池;

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