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25th Anniversary Article: Polymer-Particle Composites: Phase Stability and Applications in Electrochemical Energy Storage

机译:25周年文章:聚合物颗粒复合材料:相稳定性及其在电化学储能中的应用

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摘要

Polymer-particle composites are used in virtually every field of technology. When the particles approach nanometer dimensions, large interfacial regions are created. In favorable situations, the spatial distribution of these interfaces can be controlled to create new hybrid materials with physical and transport properties inaccessible in their constituents or poorly prepared mixtures. This review surveys progress in the last decade in understanding phase behavior, structure, and properties of nanoparticle-polymer composites. The review takes a decidedly polymers perspective and explores how physical and chemical approaches may be employed to create hybrids with controlled distribution of particles. Applications are studied in two contexts of contemporary interest: battery electrolytes and electrodes. In the former, the role of dispersed and aggregated particles on ion-transport is considered. In the latter, the polymer is employed in such small quantities that it has been historically given titles such as binder and carbon precursor that underscore its perceived secondary role. Considering the myriad functions the binder plays in an electrode, it is surprising that highly filled composites have not received more attention. Opportunities in this and related areas are highlighted where recent advances in synthesis and polymer science are inspiring new approaches, and where newcomers to the field could make important contributions.
机译:聚合物颗粒复合材料几乎用于每个技术领域。当颗粒接近纳米尺寸时,会产生较大的界面区域。在有利的情况下,可以控制这些界面的空间分布,以创建新的杂化材料,这些杂化材料的成分或制备不良的混合物无法获得物理和运输特性。这篇综述调查了近十年来在了解纳米粒子-聚合物复合材料的相行为,结构和性能方面的进展。该综述从聚合物的角度出发,探讨了如何采用物理和化学方法来创建具有受控颗粒分布的杂化体。在当代关注的两个方面研究了应用:电池电解质和电极。在前者中,考虑了分散和聚集的颗粒在离子传输中的作用。在后者中,该聚合物的使用量很小,以至于它在历史上一直被赋予了强调其次要作用的标题,例如粘合剂和碳前体。考虑到粘合剂在电极中发挥的多种功能,令人惊讶的是,高度填充的复合材料并未受到更多关注。在合成和聚合物科学方面的最新进展正在激发新方法的领域,以及该领域的新来者可以做出重要贡献的领域和相关领域中的机遇得到了强调。

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  • 来源
    《Advanced Materials》 |2014年第2期|201-233|共33页
  • 作者单位

    School of Chemical and Biomolecular Engineering Cornell University Ithaca, NY, 14853, USA;

    School of Chemical and Biomolecular Engineering Cornell University Ithaca, NY, 14853, USA;

    NOHMs Technologies, Inc.2582 Research Park Drive, Lexington, KY, 40511, USA;

    Department of Material Science and Engineering Cornell University Ithaca, NY, 14853, USA;

    School of Chemical and Biomolecular Engineering Cornell University Ithaca, NY, 14853, USA;

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