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Factors influencing electronic and ionic conductivity in ion-coordinating conjugated polymers.

机译:影响离子配位共轭聚合物中电子和离子电导率的因素。

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摘要

The study of conductive polymers is a large and active area of research. Conjugated polymers are able to conduct electronic charge carriers through their π electron systems, while those materials with ion-coordinating components, like poly(ethylene oxide) (PEO), facilitate the transport of ionic species.; In this study, polymers featuring PEO-like side chains attached to poly(thiophene) backbones were synthesized. The length of the side chains was found to have a significant effect on the solubility and film-forming properties of these materials. Those materials with short side chains were found to be soluble in chlorinated solvents and formed quality films only with great difficulty. In contrast, the polymers with longer side chains were soluble in more polar solvents and were easily cast as uniform films. In addition, various aspects of the polymerization reaction such as temperature, concentration, and purity were determined to be crucial to obtaining soluble materials.; Addition of lithium triflate to the polymers in a concentration range of [O]:[Li] = 10 to 100 led to ionic conductivity. This property was found to be dependent on the concentration of the added salt as well as the length of the side chains. The maximum ionic conductivity for each material was found at intermediate concentrations of salt. Through the use of infrared spectroscopy, it was determined that maximum concentrations of free ions were also attained at intermediate total salt concentrations. In general, increased length of the side chains led to increased conductivity. The maximum value of ionic conductivity at ambient temperature determined for these materials was 2 · 10−4 S · cm−1 with a lithium triflate concentration of 0.75 mmol LiOTf/g –C2H4O–. This value is competitive with many of the best known PEO-based polymer electrolytes.; The electronic conductivity of these materials when doped with NOBF 4 was found to be quite sensitive to the presence of lithium triflate as well as length of the side chains. In their salt-free states, those materials with shorter side chains showed values of conductivity on the order of 10 −1 S · cm−1. Those polymers with longer side chains were much less conductive, with values of electronic conductivity only about 10−6 S · cm−1. Any added salt led to conductivity values of about 10−6 S · cm−1, regardless of the length of the side chains. Very little difference in conductivity between the various salt concentrations studied could be observed.
机译:导电聚合物的研究是一个广阔而活跃的研究领域。共轭聚合物能够通过其π电子系统传导电子载流子,而那些具有离子配位成分的材料(如聚环氧乙烷(PEO))则有助于离子物质的运输。在这项研究中,合成了具有连接到聚噻吩主链上的PEO状侧链的聚合物。发现侧链的长度对这些材料的溶解度和成膜性能具有显着影响。发现具有短侧链的那些材料可溶于氯化溶剂,并且很难形成高质量的膜。相反,具有较长侧链的聚合物可溶于更多极性溶剂,并易于流延成均匀的薄膜。另外,确定了聚合反应的各个方面,例如温度,浓度和纯度对于获得可溶性材料至关重要。在[O]:[Li] = 10到100的浓度范围内向聚合物中添加三氟甲磺酸锂导致离子电导率。发现该性质取决于添加的盐的浓度以及侧链的长度。在盐的中等浓度下发现每种材料的最大离子电导率。通过使用红外光谱法,可以确定在中等总盐浓度下也达到了最大游离离子浓度。通常,侧链长度的增加导致电导率的增加。这些材料在室温下确定的离子电导率最大值为2·10 -4 S·cm -1 ,三氟甲磺酸锂的浓度为0.75 mmol LiOTf / g – C 2 H 4 O–。该值与许多最著名的基于PEO的聚合物电解质竞争。发现这些材料掺杂NOBF 4 时的电子电导率对三氟甲磺酸锂的存在以及侧链的长度非常敏感。在无盐状态下,那些具有较短侧链的材料的电导率值约为10 -1 S·cm -1 。那些具有较长侧链的聚合物的导电性要差得多,电子电导率值仅为10 -6 S·cm -1 。不管侧链的长度如何,任何添加的盐都会导致电导率值约为10 -6 S·cm -1 。可以观察到所研究的各种盐浓度之间的电导率差异很小。

著录项

  • 作者

    Witker, David L.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Chemistry Polymer.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 p.4388
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物) ;
  • 关键词

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