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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Interfacial Drawing: Roll-to-Roll Coating of Semiconducting Polymer and Barrier Films onto Plastic Foils and Textiles
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Interfacial Drawing: Roll-to-Roll Coating of Semiconducting Polymer and Barrier Films onto Plastic Foils and Textiles

机译:界面绘图:半导体聚合物和屏障薄膜的滚动涂层塑料箔和纺织品

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摘要

This paper demonstrates that a thin polymeric film (10-80 nm) can be continuously drawn from the meniscus of a nonpolar polymer solution at an air-water-fluoropolymer interface using a roll-to-roll process: "interfacial drawing". With this process, it is possible to control the thickness of the film by manipulating the concentration of the solution, along with the drawing velocity of the receiving substrate. We demonstrate the formation of thin films >1 m in length and 1000 cm(2) in area, using our custom-designed apparatus. Interfacial drawing has three characteristics which compare favorably to other methods of forming and depositing polymeric thin films. First, the films are solidified prior to deposition, which means that they can be used to uniformly coat nonplanar, rough, or porous substrates. Second, these films can be stacked into multilayered architectures without risk of redissolving the layer beneath. Third, for some materials, the process yields films with superior mechanical compliance for applications such as wearable or flexible devices, compared to films produced by spin-coating. We demonstrate the utility of interfacial drawing by forming thin films of various semiconducting polymers, including the active layers of all-polymer bulk heterojunction solar cells as well as barrier coatings. As part of these demonstrations, we show how floating polymeric films can be transferred easily to diverse substrates, including those with rough and irregular surfaces, such as textiles and fabrics.
机译:本文表明,使用卷到卷过程:“界面拉伸”,可以在空气 - 含氟聚合物界面下从非极性聚合物溶液的弯月面上连续地从非极性聚合物溶液的弯月面中连续地抽取薄的聚合物膜(10-80nm)。利用该方法,可以通过操纵溶液的浓度以及接收基板的拉伸速度来控制膜的厚度。我们使用我们的定制设计的设备证明了在面积长度和1000厘米(2)的薄膜的形成。界面图具有三种特性,其与其他形成和沉积聚合物薄膜的其他方法进行比较。首先,在沉积之前凝固膜,这意味着它们可用于均匀涂覆非平面,粗糙或多孔基板。其次,这些薄膜可以堆叠成多层架构,而不会在下面重新溶解层的风险。第三,对于某些材料,与通过旋涂制备的薄膜相比,该方法可以产生具有优异的机械顺应性的薄膜,例如可穿戴装置,例如可穿戴或柔性装置。我们通过形成各种半导体聚合物的薄膜来证明界面图的效用,包括全聚合物载体异质结太阳能电池以及阻挡涂层的活性层。作为这些示范的一部分,我们展示了浮动聚合物膜如何容易地转移到不同的基材上,包括粗糙和不规则表面的那些,例如纺织品和织物。

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    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

    Univ Calif San Diego Dept NanoEngn 9500 Gilman Dr Mail Code 0448 La Jolla CA 92093 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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