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可移除大面积超平滑银纳米线透明复合电极。

Removable Large-Area Ultrasmooth Silver Nanowire Transparent Composite Electrode.

机构信息

Department of Materials Sciences and Engineering, California NanoSystems Institute, Henry Samuli School of Engineering and Applied Science, University of California , Los Angeles, California 90095, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Feb 8;9(5):4733-4741. doi: 10.1021/acsami.6b15025. Epub 2017 Jan 30.

Abstract

In this work, a composite silver nanowire (AgNW) transparent electrode that is large-area ultrasmooth without conductivity or transmittance scarifice, removable but with good resistance to both water and organic solvent, is reported. Via a simple low-temperature solution process without complicated transfer steps or additional pressure pressing, a new kind of AgNWs composite with biocompatible and patternable chitosan polymer complex demonstrates a quite low root-mean-square roughness ∼7 nm at a largest reported scan size of 50 μm × 50 μm, which is among the best flat surface. After long-term exposure to both water and organic solvent, it still shows strong adhesion, unchanged transparency, and no obvious conductivity reduction, suggesting a good stability staying on the substrate. Meanwhile, the polymer and silver nanowire in the composite electrode can be damaged via the same process through concentrated acid or base etching to leave off the substrate, allowing a simple patterning technology. Besides, the imported insulating polymer does not lower down the opto-electrical performance, and a high figure of merit close to 300 is obtained for the composite electrode, significantly outperforming the optoelectronic performance of indium-tin oxide (ITO) coated plastics (∼100) and comparable to ITO-coated glass. It shows great advantage to replace ITO as a promising transparent electrode.

摘要

本文报道了一种大面积超平整、无导电性或透光性损失、可去除但对水和有机溶剂均具有良好抗性的复合银纳米线(AgNW)透明电极。通过一种简单的低温溶液工艺,无需复杂的转移步骤或额外的压力压制,具有生物相容性和可图案化壳聚糖聚合物的新型 AgNWs 复合材料在最大报道的扫描尺寸为 50μm×50μm 时表现出相当低的均方根粗糙度约 7nm,这是最好的平整表面之一。长期暴露于水和有机溶剂后,仍表现出强烈的附着力、不变的透明度和无明显的电导率降低,表明在基底上具有良好的稳定性。同时,通过浓酸或强碱刻蚀,复合电极中的聚合物和银纳米线可以与基底分离,从而实现简单的图案化技术。此外,导入的绝缘聚合物不会降低光电性能,复合材料电极的优值接近 300,明显优于涂覆塑料的铟锡氧化物(ITO)(约 100)的光电性能,可与涂覆玻璃的 ITO 相媲美。它显示出替代 ITO 作为一种有前途的透明电极的巨大优势。

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