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A charge transfer complex nematic liquid crystalline gel with high electrical conductivity

机译:具有高电导率的电荷转移复合向列型液晶凝胶

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摘要

We describe the rheological, dielectric and elastic properties of a nematic liquid crystal gel created using an anthrylidene derivative of arjunolic acid, a chiral triterpenoid, obtained from the extracts of the wood of Terminalia arjuna. In this novel gel, having the electron-donor and acceptor components as minority constituents, the gelation and strengthening of charge-transfer complex (CTC) formation are seen to be occurring concomitantly. In addition to being mechanically strong with a large storage modulus, the gel with the maximized CTC exhibits Frank bend elastic constant values that approach nanonewton levels. The highlight of the study is the observation of 4-5 orders of magnitude increase in electrical conductivity for this gel, a value that is higher than even in the CT complexes of 2-d ordered columnar structures. A further important advantage of the present system over the columnar complex is that the high conductivity is seen for ac probing also, and owing to the nematic nature can be switched between its anisotropic limits. Some of these features are ascribed to a specific molecular packing architecture, which reduces the trapping of the charge carriers.
机译:我们描述了一种向列型液晶凝胶的流变,介电和弹性性质,该向列型液晶凝胶使用了从榄仁木的提取物中获得的一种氨基酸的手性三萜类化合物的蒽叉基衍生物。在这种具有电子给体和受体成分作为少数成分的新型凝胶中,伴随着电荷转移复合物(CTC)形成的凝胶化和增强被发现。除了具有强的机械强度和较大的储能模量外,具有最大CTC的凝胶还具有接近纳米牛顿水平的Frank弯曲弹性常数。该研究的重点是观察到该凝胶的电导率增加了4-5个数量级,该值甚至比2维有序柱状结构的CT络合物还高。本系统相对于柱状络合物的另一重要优点是,也可观察到高电导率,并且由于向列性质可在其各向异性极限之间切换。这些特征中的一些归因于特定的分子堆积结构,该结构减少了电荷载流子的俘获。

著录项

  • 来源
    《Journal of Applied Physics 》 |2014年第15期| 154902.1-154902.7| 共7页
  • 作者单位

    Centre for Nano and Soft Matter Sciences, Jalahalli, Bangalore 560013, India;

    Centre for Nano and Soft Matter Sciences, Jalahalli, Bangalore 560013, India;

    Centre for Nano and Soft Matter Sciences, Jalahalli, Bangalore 560013, India;

    Department of Chemistry and Chemical Technology, Vidyasagar University, Midnapore (W) 721 102, India;

    Department of Chemistry and Chemical Technology, Vidyasagar University, Midnapore (W) 721 102, 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
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