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Gyroid and Other Ordered Morphologies in Single-Ion Conducting Polymers and Their Impact on Ion Conductivity

机译:单离子导电聚合物中的陀螺和其他有序形态及其对离子电导率的影响

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摘要

Controlling the self-assembled nanoscale ionic aggregates in single-ion conducting polymers is a crucial step toward exceptional transport properties. We report a series of precisely segmented polyethylene-like materials containing sulfonate groups (PES23) with Li~+, Na~+, Cs~+, or NBu_4~+ counterions synthesized from step-growth polymerization. At room temperature, all polymers are semicrystalline with well-defined nanoscale ionic layers separated by 35—38 A, depending on the cation. In situ X-ray scattering measurements reveal that the layered ionic aggregates in PES23Li, PES23Na, and PES23Cs transform, upon melting the PE blocks, into the Ia3d gyroid morphology. The gyroidal ionic aggregates in PES23Li and PES23Na further evolve into hexagonal symmetry as the temperature increases. These order-to-order transitions in ionic aggregate morphologies were also confirmed by oscillatory shear rheology. The ion transport behavior of these PES23 polymers is strongly dependent on the ionic aggregate morphologies. Specifically, the 3D interconnected gyroid morphology of PES23Li exhibits higher ionic conductivity than the isotropic layered or hexagonal morphologies. This innovative and versatile molecular design of single-ion conducting polymers leads to unprecedented percolated gyroidal ionic aggregate morphologies that provide a continuous pathway for improved ion transport.
机译:控制单离子导电聚合物中的自组装纳米级离子聚集体是迈向卓越传输性能的关键一步。我们报告了一系列精确分段的类似聚乙烯的材料,这些材料含有由逐步生长聚合合成的Li〜+,Na〜+,Cs〜+或NBu_4〜+抗衡离子的磺酸根基团(PES23)。在室温下,所有聚合物都是半结晶的,具有明确的纳米级离子层,取决于阳离子,它们之间的间隔为35-38A。原位X射线散射测量显示,PES23Li,PES23Na和PES23Cs中的分层离子聚集体在熔化PE嵌段后转变为Ia3d螺旋状形态。随着温度升高,PES23Li和PES23Na中的螺旋形离子聚集体进一步演变为六边形对称。振荡剪切流变学也证实了离子聚集体形态中的这些按序过渡。这些PES23聚合物的离子迁移行为在很大程度上取决于离子聚集体的形态。具体而言,PES23Li的3D互连螺旋状形态比各向同性分层或六边形形态具有更高的离子电导率。单离子导电聚合物的这种创新的通用分子设计可产生前所未有的渗透型螺旋状离子聚集体形态,为改善离子传输提供了连续的途径。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第2期|857-866|共10页
  • 作者单位

    Department of Chemical and Biomolecular Engineering The University of Pennsylvania Philadelphia Pennsylvania 19104 United States;

    Department of Chemistry University of Konstanz Universitaetsstraβe 10 78457 Konstanz Germany;

    Department of Chemical and Biomolecular Engineering The University of Pennsylvania Philadelphia Pennsylvania 19104 United States Department of Materials Science and Engineering The University of Pennsylvania Philadelphia Pennsylvania 19104 United States;

  • 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);美国《化学文摘》(CA);
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  • 正文语种 eng
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