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The Importance of Bridging Points for Charge Transport in Webs of Conjugated Polymer Nanofibers

机译:共轭聚合物纳米纤维网中电荷传输的桥接点的重要性

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摘要

Electrical characterizations on webs of highly ordered semiconducting polymer nanofibers (NFs) are often performed with large electrodes devices (millimeter scale) for which the carrier transport is an average between transport within isolated NFs and transport at the intersection of two or more NFs. In order to assess the nanoscale electrical properties of the NFs, a field-effect transistor based on conductive atomic force microscopy is introduced that allows the visualization of the current distribution at the nanometer scale within a web of poly(3-butylthiophene) NFs. The contact resistance is evaluated to be ≈4 kΩ cm, which does not limit the charge transport process, and the mobility in one single NF is μ_(NF) = 0.07 ± 0.03 cm~2 V~(-1) s~(-1). One NF can carry a current density of 20 kA cm~(-2) without being destroyed. Moreover, by observing the current maps in detail, it is found that the electrical resistance associated with the bridging of two or more individual NFs does not reduce the charge transport inside the web of NFs. Finally, different kinds of bridging geometries are shown and the role of tie molecules is discussed.
机译:高序半导体聚合物纳米纤维(NFs)网上的电学表征通常使用大型电极设备(毫米级)进行,对于这些设备,载流子传输是孤立NFs内的传输与两个或多个NFs相交处的传输之间的平均值。为了评估NFs的纳米级电性能,引入了基于导电原子力显微镜的场效应晶体管,该晶体管可以可视化聚(3-丁基噻吩)NFs网中纳米级的电流分布。接触电阻估计为≈4kΩcm,这不限制电荷传输过程,并且单个NF中的迁移率为μ_(NF)= 0.07±0.03 cm〜2 V〜(-1)s〜(- 1)。一个NF可以承载20 kA cm〜(-2)的电流密度而不会被破坏。此外,通过详细地观察电流图,发现与两个或更多个单独的NF的桥接相关联的电阻不会减少NF的网内部的电荷传输。最后,显示了不同种类的桥接几何,并讨论了键分子的作用。

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  • 来源
    《Advanced Functional Materials 》 |2013年第7期| 862-869| 共8页
  • 作者单位

    Hasselt University Campus Diepenbeek Institute for Materials Research Agoralaan Building D, 3590 Diepenbeek, Belgium;

    Hasselt University Campus Diepenbeek Institute for Materials Research Agoralaan Building D, 3590 Diepenbeek, Belgium;

    IMEC-IMOMEC Wetenschapspark 1, 3590 Diepenbeek, Belgium;

    Hasselt University Campus Diepenbeek Institute for Materials Research Agoralaan Building D, 3590 Diepenbeek, Belgium IMEC-IMOMEC Wetenschapspark 1, 3590 Diepenbeek, Belgium;

    Hasselt University Campus Diepenbeek Institute for Materials Research Agoralaan Building D, 3590 Diepenbeek, Belgium IMEC-IMOMEC Wetenschapspark 1, 3590 Diepenbeek, Belgium;

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