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首页> 外文期刊>Journal of power sources >Spark plasma sintered/synthesized dense and nanostructured materials for solid-state Li-ion batteries: Overview and perspective
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Spark plasma sintered/synthesized dense and nanostructured materials for solid-state Li-ion batteries: Overview and perspective

机译:固态锂离子电池火花等离子体烧结/合成的致密纳米结构材料:概述和观点

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摘要

Spark Plasma Sintering (SPS) offers advantages that include faster densification, activated materials synthesis, formation of atomically clean grain boundaries, good grain-to-grain bonding, and minimization of particle coarsening that allows the retention of nanosized grains/particles during synthesis or sintering. The present review summarizes for the first time the possibilities of using these advantages for applications in electrochemical energy storage, or more precisely, for developing high performance all-solid-state Li-ion batteries that are better suited for more heavy duty applications, such as in automobiles. This survey demonstrates the improvements that can be achieved for the ionic conductivities of the ceramic solid electrolytes on sintering via SPS and for the overall transport properties of the cathode materials on synthesizing via SPS. These would not only render the solid electrolytes better suited for enhanced practical applications, but also result in overall improved rate capabilities for the batteries. Furthermore, possibilities of fabricating entire solid-state Li-ion batteries, possessing improved mechanical integrity and power density, via one-step SPS of stacked laminates of anode-solid electrolyte -cathode materials have been brought into light. The improvements achieved, mainly due to the formation of 'perfect' interfaces and due to nanostructuring, are correlated to the intrinsic mechanisms of the spark plasma sintering process.
机译:火花等离子体烧结(SPS)具有以下优势,包括更快的致密化,活性材料合成,形成原子上干净的晶界,良好的晶粒间结合以及最小化的颗粒粗化,从而可以在合成或烧结过程中保留纳米尺寸的颗粒/颗粒。本综述首次总结了将这些优点用于电化学储能中,或更确切地说,用于开发高性能全固态锂离子电池的可能性,这些电池更适合于更重负荷的应用,例如在汽车上。该调查表明,通过SPS烧结时,陶瓷固体电解质的离子电导率可以提高,而通过SPS合成时,阴极材料的整体传输性能可以实现。这些不仅使固体电解质更好地适合于增强的实际应用,而且还导致电池整体上提高了速率能力。此外,通过阳极-固体电解质-阴极材料的堆叠层压件的一步式SPS,制造具有改善的机械完整性和功率密度的整个固态锂离子电池的可能性已被发现。主要由于“完美”界面的形成和纳米结构而实现的改进与火花等离子体烧结过程的内在机理有关。

著录项

  • 来源
    《Journal of power sources》 |2014年第1期|920-931|共12页
  • 作者单位

    High Temperature and Energy Materials Laboratory, Department of Metallurgical Engineering and Materials Science, IIT Bombay, Powai, Mumbai 400076, India;

    High Temperature and Energy Materials Laboratory, Department of Metallurgical Engineering and Materials Science, IIT Bombay, Powai, Mumbai 400076, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Spark plasma sintering; Solid electrolyte; Ionic conductivity; All-solid-state Li-ion battery;

    机译:火花等离子体烧结;固体电解质;离子电导率;全固态锂离子电池;

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